System and method for detecting an intruder using impulse radio technology
Summary by NHIP
UWB Multipath Zone Detection
The method relates an object's position to a zone perimeter using ultra-wideband radio signals. It generates three or more waveforms indicating multipath structures from first signals, then defines the perimeter by analyzing a person traversing it before comparing subsequent waveforms to determine the object's location.
Claim Score by NHIP
Abstract
An intrusion detection system and method are provided that can utilize impulse radio technology to detect when an intruder has entered a protection zone. In addition, the intrusion detection system and method can utilize impulse radio technology to determine a location of the intruder within the protection zone and also track the movement of the intruder within the protection zone. Moreover, the intrusion detection system and method can utilize impulse radio technology to create a specially shaped protection a one before trying to detect when and where the intruder has penetrated and moved within the protection zone.

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Expired 19 June 2025, 1.3 years ago.
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20 claims: 3 independent, 17 dependent
- 1A method of relating a position of an object to a perimeter of a zone, the method comprising the steps of:a. generating three or more first waveforms, each of the three or more first waveforms indicating a multipath structure of a propagation channel of first UWB signals having been transmitted from a first UWB radio to a corresponding one of three or more second UWB radios;b. defining the perimeter of the zone based upon a person traversing a perimeter of the zone;c. generating three or more second waveforms, each of the three or more second waveforms indicating a multipath structure of a propagation channel of second UWB signals having been transmitted from the first UWB radio to the corresponding one of the three or more second UWB radios;d. comparing each one of the three or more first waveforms to the corresponding one of the three or more second waveforms to determine the position of the object;and e. relating the position of the object to the perimeter of the zone.
- 8A system for relating the position of an object to a perimeter of a zone, the system comprising:a first UWB radio;three or more second UWB radios;and a processor for generating three or more first waveforms, each of the three or more first waveforms indicating a multipath structure of a propagation channel of first UWB signals having been transmitted from the first UWB radio to a corresponding one of the three or more second UWB radios, defining the perimeter of the zone based upon a person traversing a perimeter of the zone, generating three or more second waveforms, each of the three or more second waveforms indicating a multipath structure of a propagation channel of second UWB signals having been transmitted from the first UWB radio to the corresponding one of the three or more second UWB radios, comparing each one of the three or more first waveforms to the corresponding one of the three or more second waveforms to determine a position of an object, and relating the position of the object to the perimeter of the zone.
- 14Broadest claimClaim Score 55, average(NHIP)A method of relating the position of an object to a perimeter of a zone, the method comprising the steps of:a. generating three or more first waveforms indicating multipath structures of propagation channels between a first UWB radio and three or more second UWB radios;b. defining the perimeter of the zone based upon a person traversing a perimeter of the zone;c. generating three or more second waveforms indicating multipath structures of propagation channels between the first UWB radio and three or more second UWB radios;d. comparing the three or more first waveforms to the three or more second waveforms to determine the position of the object;e. relating the position of the object to the perimeter of the zone.
Independent claims3
229 paragraphs in 7 sections, as filed
This application is a continuation application of U.S. patent application Ser. No. 10/971,878, filed Oct. 22, 2004, now U.S. Pat. No. 7,129,886, issued Oct. 31, 2006, which is a continuation of U.S. patent application Ser. No. 10/632,425, filed Aug. 1, 2003, now U.S. Pat. No. 6,822,604, issued Nov. 23, 2004, which is a continuation application of 09/952,206 filed Sep. 14, 2001 U.S. Pat. No. 6,614,384 which claims the benefit of U.S. Provisional Application Ser. No. 60/232,562, filed, on Sep. 14, 2000.
BACKGROUND OF THE INVENTION
1. Field of the Invention
The present invention relates in general to the security field and, in particular, to a system and method capable of using impulse radio technology to detect when an intruder has entered a protection zone and where in the protection zone the intruder is currently located.
2. Description of Related Art
Today there are many types of intrusion detection systems that can detect and signal an alarm if a person enters a protection zone. One type of an intrusion detection system uses sensors to detect an intruder where the sensors are placed on the doors, windows or any opening of a building that can be breached by the intruder. Thus, if an intruder opens a door or window a circuit in a sensor is interrupted and then the intrusion detection system sounds an alarm and/or alerts remote security personnel. This type of intrusion detection system can be employed only where a building or structure is available to support the wiring for the sensors.
Another type of intrusion detection system may use invisible beams of light, visible beams of light or narrow radar beams to effectively form a fence around a protection zone. Thus, if an intruder interrupts one of the beams then the intrusion detection system sounds an alarm and/or alerts remote security personnel. Unfortunately, if the intruder penetrates the fence without triggering the alarm then detection of that intruder by the intrusion detection system is unlikely.
Yet another type of intrusion detection system may use radar or ultrasonic energy throughout the area in the protection zone. Thus, it an intruder moves within the protection zone a Doppler shift in the radar or ultrasonic energy may be detected by the intrusion detection, system which then sounds an alarm and/or alerts remote security personnel. Unfortunately, all of these intrusion detection systems and other well known intrusion detection systems can be easily jammed, backed, spoofed or otherwise defeated, by intruders. For instance, a slow moving intruder can trick the traditional intrusion detection system that uses narrow radar beams to form a fence around a protection zone. Accordingly, there is a need for an intrusion detection system and method that is essentially spool-proof or very difficult for an intruder to defeat. This need and other needs are solved by the intrusion detection system and method of the present invention.
BRIEF DESCRIPTION OF THE INVENTION
The present invention includes an intrusion detection system and method that can utilize impulse radio technology to detect when an intruder has entered a protection zone. In addition, the intrusion detection system and method can utilize impulse radio technology to determine a location of the intruder within the protection zone and also track the movement of the intruder within the protection zone. Moreover, the intrusion detection system and method can utilize impulse radio technology to create a specially shaped protection zone before trying to detect when and where the intruder has penetrated and moved within the protection zone.
BRIEF DESCRIPTION OF THE DRAWINGS
A more complete understanding of the present invention may be had by reference to the following detailed description when taken in conjunction with the accompanying drawings wherein:
<figref idref="DRAWINGS">FIG. 1A</figref> illustrates a representative Gaussian Monocycle waveform in the time domain;
<figref idref="DRAWINGS">FIG. 1B</figref> illustrates the frequency domain amplitude of the Gaussian Monocycle of <figref idref="DRAWINGS">FIG. 1A</figref>;
<figref idref="DRAWINGS">FIG. 1C</figref> represents the second derivative of the Gaussian Monocycle of <figref idref="DRAWINGS">FIG. 1A</figref>;
<figref idref="DRAWINGS">FIG. 1D</figref> represents the third derivative of the Gaussian Monocycle of <figref idref="DRAWINGS">FIG. 1A</figref>;
<figref idref="DRAWINGS">FIG. 1E</figref> represents the Correlator Output vs. the Relative Delay in a real date pulse;
<figref idref="DRAWINGS">FIG. 1F</figref> graphically depicts the frequency plot or the Gaussian family of the Gaussian Pulse and the first, second, and third derivative.
<figref idref="DRAWINGS">FIG. 2A</figref> illustrates a pulse train comprising pulses as in <figref idref="DRAWINGS">FIG. 1A</figref>;
<figref idref="DRAWINGS">FIG. 2B</figref> illustrates the frequency domain amplitude or the waveform of <figref idref="DRAWINGS">FIG. 2A</figref>;
<figref idref="DRAWINGS">FIG. 2C</figref> illustrates the pulse train spectrum;
<figref idref="DRAWINGS">FIG. 2D</figref> is a plot of the Frequency vs. Energy Plot and points out the coded signal energy spikes;
<figref idref="DRAWINGS">FIG. 3</figref> illustrates the cross-correlation of two codes graphically as Coincidences vs. Time Offset;
<figref idref="DRAWINGS">FIG. 4A-4E</figref> graphically illustrate five modulation techniques to include: Early-Late Modulation; One of Many Modulation; Flip Modulation; Quad Flip Modulation; and Vector Modulation;
<figref idref="DRAWINGS">FIG. 5A</figref> illustrates representative signals of an interfering signal, a coded received pulse train and a coded reference pulse train;
<figref idref="DRAWINGS">FIG. 5B</figref> depicts a typical geometrical configuration giving rise to multipath received signals;
<figref idref="DRAWINGS">FIG. 5C</figref> illustrates exemplary multipath signals in the time domain;
<figref idref="DRAWINGS">FIGS. 5D-5F</figref> illustrate a signal plot of various multipath environments.
<figref idref="DRAWINGS">FIG. 5G</figref> illustrates the Rayleigh fading curve associated with non-impulse radio transmissions in a multipath environment.
<figref idref="DRAWINGS">FIG. 5H</figref> illustrates a plurality of multipaths with a plurality of reflectors from a transmitter to a receiver.
<figref idref="DRAWINGS">FIG. 5I</figref> graphically represents signal strength as volts vs. time in a direct path and multipath environment.
<figref idref="DRAWINGS">FIG. 6</figref> illustrates a representative impulse radio transmitter functional diagram;
<figref idref="DRAWINGS">FIG. 7</figref> illustrates a representative impulse radio receiver functional diagram;
<figref idref="DRAWINGS">FIG. 8A</figref> illustrates a representative received pulse signal at the input to the correlator;
<figref idref="DRAWINGS">FIG. 8B</figref> illustrates a sequence of representative impulse signals in the correlation process;
<figref idref="DRAWINGS">FIG. 8C</figref> illustrates the output of the correlator for each of the time offsets of <figref idref="DRAWINGS">FIG. 8B</figref>.
<figref idref="DRAWINGS">FIG. 9</figref> illustrates an exemplary block diagram of an ultra-wideband scanning receiver that could be used in the present invention.
<figref idref="DRAWINGS">FIG. 10</figref> illustrates an exemplary block diagram of an ultra-wideband scanning transmitter that could be used in the present invention.
<figref idref="DRAWINGS">FIG. 11</figref> illustrates a diagram of the basic components of a first embodiment of the intrusion detection system in accordance with the present invention (see also <figref idref="DRAWINGS">FIG. 14</figref>).
<figref idref="DRAWINGS">FIG. 12</figref> illustrates a diagram of the basic components of a second embodiment of the intrusion detection system in accordance with the present invention (see also <figref idref="DRAWINGS">FIG. 17</figref>.
<figref idref="DRAWINGS">FIG. 13</figref> illustrates an example of a specially shaped protection zone associated with a third embodiment in accordance with the present invention (see also <figref idref="DRAWINGS">FIG. 20</figref>.
<figref idref="DRAWINGS">FIG. 14</figref> illustrates in greater detail a diagram of the basic components of the first embodiment of the intrusion detection system in accordance with the present invention.
<figref idref="DRAWINGS">FIGS. 15</figref><i>a</i>-<b>15</b><i>b </i>illustrate an exemplary first waveform and an exemplary second waveform that could be generated by a receiving impulse radio unit shown in <figref idref="DRAWINGS">FIG. 14</figref>.
<figref idref="DRAWINGS">FIG. 16</figref> illustrates a flowchart of the basic steps of a first embodiment of the preferred method in accordance with the present invention.
<figref idref="DRAWINGS">FIG. 17</figref> illustrates in greater detail a diagram of the basic components of a second embodiment of the intrusion detection system in accordance with the present invention.
<figref idref="DRAWINGS">FIGS. 18</figref><i>a</i>-<b>18</b><i>b </i>illustrate exemplary first waveforms and exemplary second waveforms that could be generated by three different receiving impulse radio units shown in <figref idref="DRAWINGS">FIG. 17</figref>.
<figref idref="DRAWINGS">FIGS. 19</figref><i>a</i>-<b>19</b><i>b </i>illustrates a flowchart of the basic steps of a second embodiment of the preferred method in accordance with the present invention.
<figref idref="DRAWINGS">FIG. 20</figref> illustrates in greater detail a diagram of the basic components of a third embodiment of the intrusion detection system in accordance with the present invention.
<figref idref="DRAWINGS">FIGS. 21</figref><i>a</i>-<b>21</b><i>b </i>illustrates a flowchart of the basic steps of a third embodiment of the preferred, method in accordance with the present invention.
<figref idref="DRAWINGS">FIG. 22</figref> illustrates a diagram of the intrusion detection system incorporating one or more directive antennas.
DETAILED DESCRIPTION OF THE INVENTION
The present invention includes an intrusion detection system and method that can utilize impulse radio technology to detect when an intruder has entered a protection zone. In addition, the intrusion detection system and method can utilize impulse radio technology to determine a location of the intruder within the protection zone and also to track the movement of the intruder within the protection zone. Moreover, the intrusion detection system and method can utilize impulse radio technology to create a specially shaped protection zone before trying to detect when and where the intruder has penetrated and moved within the protection zone. Many of these capabilities ere possible, due to the use of an emerging, revolutionary ultra wideband technology (UWB) called impulse radio technology (also known as impulse radio) which is a significant, improvement over conventional radar technology and conventional radio technology.
Impulse radio has been described in a series of patents, including U.S. Pat. Nos. 4,641,317 (issued Feb. 3, 1987), 4,813,057 (issued Mar. 14, 1989), 4,979,186 (issued Dec. 18, 1990) and 5,363,108 (issued Nov. 8, 1994) to Larry W. Fullerton. A second generation of impulse radio patents includes U.S. Pat. Nos. 5,677,927 (issued Oct. 14, 1997), 5,687,169 (issued Nov. 11, 1997), 5,764,696 (issued Jun. 9, 1998), and 5,832,035 issued Nov. 3, 1998) to Fullerton et al.
Uses of impulse radio systems are described in U.S. Pat. No. 6,177,903, titled, “System and Method for Intrusion Detection using a Time Domain Radar Array” and U.S. Pat. No. 6,218,979, titled, “Wide Area Time Domain Radar Array” both filed on Jun. 14, 1999 both of which are assigned to the assignee of the present invention. The above patent documents are incorporated herein by reference.
This section provides an overview of impulse radio technology and relevant aspects of communications theory. It is provided to assist the reader with understanding the present invention and should not be used to limit the scope of the present invention. It should be understood that the terminology ‘impulse radio’ is used primarily for historical convenience and that the terminology can be generally interchanged with the terminology ‘impulse communications system, ultra-wideband system, or ultra-wideband communication systems’. Furthermore, it should be understood that the described impulse radio technology is generally applicable to various other impulse system applications including but not limited to impulse radar systems and impulse positioning systems. Accordingly, the terminology ‘impulse radio’ can be generally interchanged with the terminology ‘impulse transmission system and impulse reception system.’
Impulse radio refers to a radio system based on short, low duty-cycle pulses. An ideal impulse radio waveform is a short Gaussian monocycle. As the name suggests, this waveform attempts to approach one cycle of radio frequency (RF) energy at a desired center frequency. Due to implementation and other spectral limitations, this waveform may be altered significantly in practice for a given application. Many waveforms having very broad, or wide, spectral bandwidth approximate a Gaussian shape to a useful degree.
Impulse radio can use many types of modulation, including amplitude modulation, phase modulation, frequency modulation, time-shift modulation (also referred to as pulse-position modulation or pulse-interval modulation) and M-ary versions of these. In this document, the time-shift modulation method is often used as an illustrative example. However, someone skilled in the art will recognize that alternative modulation approaches may, in some instances, be used instead of or in combination with the time-shift modulation approach.
In impulse radio communications, inter-pulse spacing may be held constant or may be varied on a pulse-by-pulse basis by information, a code, or both. Generally, conventional spread spectrum systems employ codes to spread the normally narrow band information signal over a relatively wide band of frequencies. A conventional spread spectrum receiver correlates these signals to retrieve the original information signal. In impulse radio communications, codes are not typically used for energy spreading because the monocycle pulses themselves have an inherently wide bandwidth. Codes are more commonly used for channelization, energy smoothing in the frequency domain, resistance to interference, and reducing the interference potential to nearby receivers. Such codes are commonly referred to as time-hopping codes or pseudo-noise (PN) codes since their use typically causes inter-pulse spacing to Pave a seemingly random nature. PN codes may be generated by techniques other than pseudorandom code generation. Additionally, pulse trains having constant, or uniform, pulse spacing are commonly referred to as uncoated pulse trains. A pulse train with uniform pulse spacing, however, may be described by a code that specifies non-temporal, i.e., non-time related, pulse characteristics.
In impulse radio communications utilizing time-shift modulation, information comprising one or more bits of data typically time-position modulates a sequence of pulses. This yields a modulated, coded timing signal that comprises a train of pulses from which a typical impulse radio receiver employing the same code may demodulate and, if necessary, coherently integrate pulses to recover the transmitted information.
The impulse radio receiver is typically a direct conversion receiver with a cross correlator front-end that coherently converts an electromagnetic pulse train of monocycle pulses to a baseband signal in a single stage. The baseband signal is the basic information signal for the impulse radio communications system. A subcarrier may also be included with the baseband signal to reduce the effects of amplifier drift and low frequency noise. Typically, the subcarrier alternately reverses modulation according to a known pattern at a rate faster than the data rate. This same pattern is used to reverse the process and restore the original data pattern just before detection. This method permits alternating current (AC) coupling of stages, or equivalent signal processing, to eliminate direct current (DC) drift and errors from the detection process. This method is described in more detail in U.S. Pat. No. 5,677,927 to Fullerton et al.
Waveforms
Impulse transmission systems are based on short, low duty-cycle pulses. Different pulse waveforms, or pulse types, may be employed to accommodate requirements of various applications. Typical pulse types include a Gaussian pulse, pulse doublet (also referred to as a Gaussian monocycle), pulse triplet, and pulse quadlet as depicted in <figref idref="DRAWINGS">FIGS. 1A through 1D</figref>, respectively. An actual received waveform that closely resembles the theoretical pulse quadlet is shown in <figref idref="DRAWINGS">FIG. 1E</figref>. A pulse type may also be a wavelet set produced by combining two or more pulse waveforms (e.g., a doublet/triplet wavelet set). These different pulse types may be produced by methods described in the patent documents referenced above or by other methods, as persons skilled in the art would understand.
For analysis purposes, it is convenient to model pulse waveforms in an ideal manner. For example, the transmitted waveform produced by supplying a step function into an ultra-wideband antenna may be modeled as a Gaussian monocycle. A Gaussian monocycle (normalized to a peak value of 1) may be described by:
<maths id="MATH-US-00001" num="00001"><math overflow="scroll"><mrow><mrow><msub><mi>f</mi><mi>mono</mi></msub><mo></mo><mrow><mo>(</mo><mi>t</mi><mo>)</mo></mrow></mrow><mo>=</mo><mrow><msqrt><mi>e</mi></msqrt><mo></mo><mrow><mo>(</mo><mfrac><mi>t</mi><mi>σ</mi></mfrac><mo>)</mo></mrow><mo></mo><msup><mi>ⅇ</mi><mfrac><mrow><mo>-</mo><msup><mi>t</mi><mn>2</mn></msup></mrow><mrow><mn>2</mn><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><msup><mi>σ</mi><mn>2</mn></msup></mrow></mfrac></msup></mrow></mrow></math></maths><img file="US7541968B2_D0001.tif" /><br /> where σ is a time scaling parameter, t is time, and e is the natural logarithm base.
The power special density of the Gaussian monocycle is shown in <figref idref="DRAWINGS">FIG. 1F</figref>, along with spectrums for the Gaussian pulse, triplet, and quadlet. The corresponding equation for the Gaussian monocycle is:
<maths id="MATH-US-00002" num="00002"><math overflow="scroll"><mrow><mrow><msub><mi>F</mi><mi>mono</mi></msub><mo></mo><mrow><mo>(</mo><mi>f</mi><mo>)</mo></mrow></mrow><mo>=</mo><mrow><msup><mrow><mo>(</mo><mrow><mn>2</mn><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><mi>π</mi></mrow><mo>)</mo></mrow><mfrac><mn>3</mn><mn>2</mn></mfrac></msup><mo></mo><mi>σ</mi><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><mi>f</mi><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><msup><mi>ⅇ</mi><mrow><mrow><mo>-</mo><mn>2</mn></mrow><mo></mo><msup><mrow><mo>(</mo><mrow><mi>π</mi><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><mi>σ</mi><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><mi>f</mi></mrow><mo>)</mo></mrow><mn>2</mn></msup></mrow></msup></mrow></mrow></math></maths><img file="US7541968B2_D0002.tif" />
The center frequency (f<sub>c</sub>), or frequency of peak spectral density, of the Gaussian monocycle is:
<maths id="MATH-US-00003" num="00003"><math overflow="scroll"><mrow><msub><mi>f</mi><mi>c</mi></msub><mo>=</mo><mfrac><mn>1</mn><mrow><mn>2</mn><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><mi>π</mi><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><mi>σ</mi></mrow></mfrac></mrow></math></maths><img file="US7541968B2_D0003.tif" />
It should be noted that the output of an ultra-wideband antenna is essentially equal to the derivative of its input. Accordingly, since the pulse doublet, pulse triplet, and pulse quadlet are the first, second, and third derivatives of the Gaussian pulse, in an ideal model, an antenna receiving a Gaussian, pulse will transmit a Gaussian monocycle and an antenna receiving a Gaussian monocycle will provide a pulse triplet.
Pulse Trains
Impulse transmission systems may communicate one or more data bits with a single pulse; however, typically each data bit is communicated using a sequence of pulses, known as a pulse train. As described in detail in the following example system, the impulse radio transmitter produces and outputs a train of pulses for each bit of information. <figref idref="DRAWINGS">FIGS. 2A and 2B</figref> are illustrations of the output of a typical 10 megapulses per second (Mpps) system with uncoded, unmodulated pulses, each having a width of 0.5 nanoseconds (ns). <figref idref="DRAWINGS">FIG. 2A</figref> shows a time domain representation of the pulse train output. <figref idref="DRAWINGS">FIG. 2B</figref> illustrates that the result of the pulse train in the frequency domain is to produce a spectrum comprising a set of comb lines spaced at the frequency of the 10 Mpps pulse repetition rate. When the full spectrum is shown, as in <figref idref="DRAWINGS">FIG. 2C</figref>, the envelope of the comb line spectrum corresponds to the curve of the single Gaussian monocycle spectrum in <figref idref="DRAWINGS">FIG. 1F</figref>. For this simple uncoded case, the power of the pulse train is spread among roughly two hundred comb lines. Each comb line thus has a small fraction of the total power and presents much less of an interference problem to a receiver sharing the band. It can also be observed from <figref idref="DRAWINGS">FIG. 2A</figref> that impulse transmission systems typically have very low average duty cycles, resulting in average power lower than peak power. The duty cycle of the signal in <figref idref="DRAWINGS">FIG. 2A</figref> is 0.5%, based on a 0.5 ns pulse duration in a 100 ns interval.
The signal of an uncoded, unmodulated pulse train may be expressed:
<maths id="MATH-US-00004" num="00004"><math overflow="scroll"><mrow><mrow><mi>s</mi><mo></mo><mrow><mo>(</mo><mi>t</mi><mo>)</mo></mrow></mrow><mo>=</mo><mrow><msup><mrow><mo>(</mo><mrow><mo>-</mo><mn>1</mn></mrow><mo>)</mo></mrow><mi>f</mi></msup><mo></mo><mi>a</mi><mo></mo><mrow><munder><mo>∑</mo><mi>j</mi></munder><mo></mo><mrow><mi>ω</mi><mo></mo><mrow><mo>(</mo><mrow><mrow><mi>ct</mi><mo>-</mo><msub><mi>jT</mi><mi>j</mi></msub></mrow><mo>,</mo><mi>b</mi></mrow><mo>)</mo></mrow></mrow></mrow></mrow></mrow></math></maths><img file="US7541968B2_D0004.tif" /><br /> where j is the index of a pulse within a pulse train, (−1)<sup>f </sup>is polarity (+/−), a is pulse amplitude, b is pulse type, c is pulse width, ω(t,b) is the normalized pulse waveform, and T<sub>f </sub>is pulse repetition time.
The energy spectrum of a pulse train signal over a frequency bandwidth of interest may be determined by summing the phasors of the pulses at each frequency, using the following equation:
<maths id="MATH-US-00005" num="00005"><math overflow="scroll"><mrow><mrow><mi>A</mi><mo></mo><mrow><mo>(</mo><mi>ω</mi><mo>)</mo></mrow></mrow><mo>=</mo><mrow><mo></mo><mrow><munderover><mo>∑</mo><mrow><mi>i</mi><mo>=</mo><mn>1</mn></mrow><mi>n</mi></munderover><mo></mo><mfrac><msup><mi>ⅇ</mi><mrow><mi>j</mi><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><mi>Δ</mi><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><mi>t</mi></mrow></msup><mi>n</mi></mfrac></mrow><mo></mo></mrow></mrow></math></maths><img file="US7541968B2_D0005.tif" /><br /> where A (ω) is the amplitude of the spectral response at a given frequency ω is the frequency being analyzed (2πf), Δt is the relative time delay of each pulse from the start of time period, and n is the total number of pulses in the pulse train.
A pulse train can also be characterized by its autocorrelation and cross-correlation properties. Autocorrelation properties pertain to the number of pulse coincidences (i.e., simultaneous arrival of pulses) that occur when a pulse train is correlated against an instance of itself that is offset in time. Of primary importance is the ratio of the number of pulses in the pulse train to the maximum number of coincidences that occur for any time offset across the period of the pulse train. This ratio is commonly referred to as the main-lobe-to-side-lobe ratio, where the greater the ratio, the easier it is to acquire and track a signal.
Cross-correlation properties involve the potential for pulses from two different signals simultaneously arriving, or coinciding, at a receiver. Of primary importance are the maximum and average numbers of pulse coincidences that may occur between two pulse trains. As the number of coincidences increases, the propensity for data errors increases. Accordingly, pulse train cross-correlation properties are used in determining channelization capabilities of impulse transmission systems (i.e., the ability to simultaneously operate within close proximity).
Coding
Specialized, coding techniques can be employed to specify temporal and/or non-temporal pulse characteristics to produce a pulse train having certain spectral and/or correlation properties. For example, by employing a PN code to vary inter-pulse spacing, the energy in the comb lines presented in <figref idref="DRAWINGS">FIG. 2B</figref> can be distributed to other frequencies as depicted in <figref idref="DRAWINGS">FIG. 2D</figref>, thereby decreasing the peak spectral density within a bandwidth of interest. Note that the spectrum retains certain properties that depend on the specific (temporal) PN code used. Spectral properties can be similarly affected by using non-temporal coding (e.g., inverting certain pulses).
Coding provides a method of establishing independent communication channels. Specifically, families of codes can be designed such that the number of pulse coincidences between pulse trains produced by any two codes will be minimal. For example, <figref idref="DRAWINGS">FIG. 3</figref> depicts cross-correlation properties of two codes that have no more than four coincidences for any time offset. Generally, keeping the number of pulse collisions minimal represents a substantial attenuation of the unwanted signal.
Coding can also be used to facilitate signal acquisition. For example, coding techniques can be used to produce pulse trains with a desirable main-lobe-to-side-lobe ratio. In addition, coding can be used to reduce acquisition algorithm search space.
Coding methods for specifying temporal and non-temporal pulse characteristics are described in commonly owned, co-pending applications titled “A Method and Apparatus for Positioning Pulses in Time,” application. Ser. No. 09/592,249, now abandoned, and “A Method for Specifying Non-Temporal Pulse Characteristics,” application Ser. No. 09/592,250, now abandoned, both filed Jun. 12, 2000, and both of which are incorporated herein by reference.
Typically, a code consists of a number of code elements having integer or floating-point values. A code element value may specify a single pulse characteristic or may be subdivided into multiple components, each specifying a different pulse characteristic. Code element or code component values typically map to a pulse characteristic value layout that may be fixed or non-fixed and may involve value ranges, discrete values, or a combination of value ranges and discrete values. A value range layout specifies a range of values that is divided into components that are each subdivided into subcomponents, which can be further subdivided, as desired. In contrast, a discrete value layout involves uniformly or non-uniformly distributed discrete values. A non-fixed layout (also referred to as a delta layout involves delta values relative to some reference value. Fixed and non-fixed layouts, and approaches for mapping code element/component values, are described in co-owned, co-pending applications, titled “Method for Specifying Pulse Characteristics using Codes,” application Ser. No. 09/592,290, now abandoned, and “A Method and Apparatus for Mapping Pulses to a Non-Fixed Layout,” application Ser. No. 09/591,691, now abandoned, both filed on Jun. 12, 2000, both of which are incorporated herein by reference.
A fixed or non-fixed characteristic value layout may include a non-allowable region within which a pulse characteristic value is disallowed. A method for specifying non-allowable regions is described in co-owned, U.S. Pat. No. 6,636,567, titled “A Method for Specifying Non-Allowable Pulse Characteristics,” (issued Oct. 21, 2003), and incorporated herein by reference. A related method that conditionally positions pulses depending on whether code elements map to non-allowable regions is described in co-owned, co-pending application, titled “A Method and Apparatus for Positioning Pulses Using a Layout having Non-Allowable Regions,” application Ser. No. 09/592,248, filed Jun. 12, 2000, now abandoned, and incorporated herein by reference.
The signal of a coded pulse train can be generally expressed by:
<maths id="MATH-US-00006" num="00006"><math overflow="scroll"><mrow><mrow><msubsup><mi>s</mi><mi>tr</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup><mo></mo><mrow><mo>(</mo><mi>t</mi><mo>)</mo></mrow></mrow><mo>=</mo><mrow><munder><mo>∑</mo><mi>j</mi></munder><mo></mo><mrow><msup><mrow><mo>(</mo><mrow><mo>-</mo><mn>1</mn></mrow><mo>)</mo></mrow><msubsup><mi>f</mi><mi>j</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup></msup><mo></mo><msubsup><mi>a</mi><mi>j</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup><mo></mo><mrow><mi>ω</mi><mo></mo><mrow><mo>(</mo><mrow><mrow><mrow><msubsup><mi>c</mi><mi>j</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup><mo></mo><mi>t</mi></mrow><mo>-</mo><msubsup><mi>T</mi><mi>j</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup></mrow><mo>,</mo><msubsup><mi>b</mi><mi>j</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup></mrow><mo>)</mo></mrow></mrow></mrow></mrow></mrow></math></maths><img file="US7541968B2_D0006.tif" /><br /> where k is the index of a transmitter, j is the index of a pulse within its pulse train, (−1)f<sub>j</sub><sup>(k)</sup>, a<sub>j</sub><sup>(k)</sup>, b<sub>j</sub><sup>(k)</sup>, c<sub>j</sub><sup>(k)</sup>, and ω(t,b<sub>j</sub><sup>(k)</sup>) are the coded polarity, pulse amplitude, pulse type, pulse width, and normalized pulse waveform of the jth pulse of the kth transmitter, and T<sub>j</sub><sup>(k) </sup>is the coded time shift of the jth pulse of the kth transmitter. Note: When a given non-temporal characteristic does not vary (i.e., remains constant for all pulses), it becomes a constant in front of the summation sign.
Various numerical code generation methods can foe employed to produce codes having certain correlation and spectral properties. Such codes typically fall into one of two categories: designed codes and pseudorandom codes. A designed code may be generated using a quadratic congruential, hyperbolic congruential, linear congruential, Costas array, or other such numerical code generation technique designed to generate codes having certain correlation properties. A pseudorandom code may be generated using a computer's random number generator, binary shift-register (s) mapped to binary words, a chaotic code generation scheme, or the like. Such ‘random-like’ codes are attractive for certain applications since they tend to spread spectral energy over multiple frequencies while having ‘good enough’ correlation properties, whereas designed codes may have superior correlation properties but possess less suitable spectral properties. Detailed descriptions of numerical code generation techniques are included in a co-owned, co-pending patent application titled “A Method and Apparatus for Positioning Pulses in Time,” application Ser. No. 09/592,248, now abandoned, and incorporated herein by reference.
It may be necessary to apply predefined criteria to determine whether a generated code, code family, or a subset of a code is acceptable for use with a given UWB application. Criteria may include correlation properties, spectral properties, code length, non-allowable regions, number of code family members, or other pulse characteristics. A method for applying predefined criteria to codes is described in co-owned, co-pending application, titled “A Method and Apparatus for Specifying Poise Characteristics using a Code that Satisfies Predefined Criteria,” application Ser. No. 09/592,283, filed Jun. 12, 2000, now U.S. Pat. No. 6,636,556, and incorporated herein by reference.
In some applications, it may be desirable to employ a combination of codes. Codes may be combined sequentially, nested, or sequentially nested, and code combinations may be repeated. Sequential code combinations typically involve switching from one code to the next after the occurrence of some event and may also be used to support multicast communications. Nested code combinations may be employed to produce pulse trains having desirable correlation and spectral properties. For example, a designed code may be used to specify value range components within a layout and a nested pseudorandom code may be used to randomly position pulses within the value range components. With this approach, correlation properties of the designed code are maintained since the pulse positions specified by the nested code reside within the value range components specified by the designed code, while the random positioning of the pulses within the components results in particular spectral properties. A method for applying code combinations is described in co-owned, co-pending application, titled “A Method and Apparatus for Applying Codes Having Pre-Defined Properties,” application Ser. No. 09/591,690, filed Jun. 12, 2000, now U.S. Pat. No. 6,671,310, and incorporated herein by reference.
Modulation
Various aspects of a pulse waveform may be modulated to convey information and to further minimize structure in the resulting spectrum. Amplitude modulation, phase modulation, frequency modulation, time-shift modulation and M-ary versions of these were proposed in U.S. Pat. No. 5,677,927 to Fullerton et al., previously incorporated by reference. Time-shift modulation can be described as shifting the position of a pulse either forward or backward in time relative to a nominal coded (or uncoded) time position in response to an information signal. Thus, each pulse in a train of pulses is typically delayed a different amount from its respective time base clock position by an individual code delay amount plus a modulation time shift. This modulation time shift is normally very small relative to the code shift. In a 10 Mpps system with a center frequency of 2 GHz, for example, the code may command pulse position variations over a range of 100 ns, whereas, the information modulation may shift the poise position by 150 ps. This two-state ‘early-late’ form of time shift modulation is depicted in <figref idref="DRAWINGS">FIG. 4A</figref>.
A pulse train with conventional ‘early-late’ time-shift modulation can be expressed:
<maths id="MATH-US-00007" num="00007"><math overflow="scroll"><mrow><mrow><msubsup><mi>s</mi><mi>tr</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup><mo></mo><mrow><mo>(</mo><mi>t</mi><mo>)</mo></mrow></mrow><mo>=</mo><mrow><munder><mo>∑</mo><mi>j</mi></munder><mo></mo><mrow><msup><mrow><mo>(</mo><mrow><mo>-</mo><mn>1</mn></mrow><mo>)</mo></mrow><msubsup><mi>f</mi><mi>j</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup></msup><mo></mo><msubsup><mi>a</mi><mi>j</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup><mo></mo><mrow><mi>ω</mi><mo></mo><mrow><mo>(</mo><mrow><mrow><mrow><msubsup><mi>c</mi><mi>j</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup><mo></mo><mi>t</mi></mrow><mo>-</mo><msubsup><mi>T</mi><mi>j</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup></mrow><mo>,</mo><mrow><mi>δ</mi><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><msubsup><mi>d</mi><mrow><mo>[</mo><mrow><mi>j</mi><mo>/</mo><msub><mi>N</mi><mi>s</mi></msub></mrow><mo>]</mo></mrow><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup></mrow><mo>,</mo><msubsup><mi>b</mi><mi>j</mi><mrow><mo>(</mo><mi>k</mi><mo>)</mo></mrow></msubsup></mrow><mo>)</mo></mrow></mrow></mrow></mrow></mrow></math></maths><img file="US7541968B2_D0007.tif" /><br /> where k is the index of a transmitter, j is the index of a pulse within its pulse train, (−1) f<sub>j</sub><sup>(k)</sup>, a<sub>j</sub><sup>(k)</sup>, b<sub>j</sub><sup>(k)</sup>, c<sub>j</sub><sup>(k)</sup>, and ω(t,b<sub>j</sub><sup>(k)</sup>) are the coded polarity, pulse amplitude, pulse type, pulse width, and normalized, pulse waveform of the jth pulse of the kth transmitter, T<sub>j</sub><sup>(k) </sup>is the coded time shift of the jth pulse of the kth transmitter, δ is the time shift added when the transmitted symbol is 1 (instead of 0), d<sup>(k) </sup>is the data (i.e., 0 or 1) transmitted, by the kth transmitter, and N<sub>s </sub>is the number of pulses per symbol (e.g., bit). Similar expressions can be derived to accommodate other proposed forms of modulation.
“An alternative form of time-shift modulation can be described as One-of-Many Position Modulation (OMPM). The OMPM approach, shown in <figref idref="DRAWINGS">FIG. 4B</figref>, involves shifting a pulse to one of N possible modulation positions about a nominal coded (or uncoded) time position in response to an information signal, where N represents the number of possible states. For example, if N were four (4), two data bits of information could be conveyed. For further details regarding OMPM, see “Apparatus, System and Method for One-of-Many Position Modulation in an Impulse Radio Communication System,”U.S. patent application Ser. No. 09/875,290, filed Jun. 7, 2001, now abandoned, assigned to the assignee of the present invention, and incorporated herein by reference.”
An impulse radio communications system can employ flip modulation techniques to convey information. The simplest flip modulation technique involves transmission of a pulse or an inverted (or flipped) pulse to represent a data bit of information, as depicted in <figref idref="DRAWINGS">FIG. 4C</figref>. Flip modulation techniques may also be combined with time-shift modulation techniques to create two, four, or more different data states. One such flip with shift modulation technique is referred to as Quadrature Flip Time Modulation (QFTM). The QFTM approach is illustrated in <figref idref="DRAWINGS">FIG. 4D</figref>. Flip modulation techniques are further described in patent application titled “Apparatus, System and Method for Flip Modulation in an Impulse Radio Communication System,” application Ser. No. 09/537,692, filed Mar. 29, 2000, now U.S. Pat. No. 6,937,667, (issued Aug. 30, 2005) assigned to the assignee of the present invention, and incorporated herein by reference.
Vector modulation techniques may also be used to convey information. Vector modulation includes the steps of generating and transmitting a series of time-modulated pulses, each pulse delayed by one of at least four pre-determined time delay periods and representative of at least two data bits of information, and receiving and demodulating the series of time-modulated pulses to estimate the data bits associated with each pulse. Vector modulation is shown in <figref idref="DRAWINGS">FIG. 4E</figref>. Vector modulation techniques are further described in patent application titled “Vector Modulation System and Method for Wideband Impulse Radio Communications,” application Ser. No. 09/169,765, filed Dec. 9, 1999, now abandoned, assigned to the assignee of the present invention, and incorporated herein by reference.
Reception and Demodulation
Impulse radio systems operating within close proximity to each other may cause mutual interference. While coding minimizes mutual interference, the probability of pulse collisions increases as the number of coexisting impulse radio systems rises. Additionally, various other signals may be present that cause interference. Impulse radios can operate in the presence of mutual interference and other interfering signals, in part because they do not depend on receiving every transmitted pulse. Impulse radio receivers perform a correlating, synchronous receiving function (at the RF level) that uses statistical sampling and combining, or integration, or many pulses to recover transmitted information. Typically, 1 to 1000 or more pulses are integrated to yield a single data bit thus diminishing the impact of individual pulse collisions, where the number of pulses that must be integrated to successfully recover transmitted information depends on a number of variables including pulse rate, bit rate, range and interference levels.
Interference Resistance
Besides providing channelization and energy smoothing, coding makes impulse radios highly resistant to interference by enabling discrimination between intended impulse transmissions and interfering transmissions. This property is desirable since impulse radio systems must share the energy spectrum with conventional radio systems and with other impulse radio systems. <figref idref="DRAWINGS">FIG. 5A</figref> illustrates the result of a narrow band sinusoidal interference signal <b>502</b> overlaying an impulse radio signal <b>504</b>. At the impulse radio receiver, the input to the cross correlation would include the narrow band signal <b>502</b> and the received ultrawide-band impulse radio signal <b>504</b>. The input is sampled by the cross correlator using a template signal <b>506</b> positioned in accordance with a code. Without coding, the cross correlation would sample the interfering signal <b>502</b> with such regularity that the interfering signals could cause interference to the impulse radio receiver. However, when the transmitted impulse signal is coded and the impulse radio receiver template signal <b>506</b> is synchronized using the identical code, the receiver samples the interfering signals non-uniformly. The samples from the interfering signal add incoherently, increasing roughly according to the square root of the number of samples integrated. The impulse radio signal samples, however, add coherently, increasing directly according to the number of samples integrated. Thus, integrating over many pulses overcomes the impact of interference.
Processing Gain
Impulse radio systems have exceptional processing gain due to their wide spreading bandwidth. For typical spread spectrum systems, the definition of processing gain, which quantifies the decrease in channel interference when wide-band communications are used, is the ratio of the bandwidth of the channel to the bit rate of the information signal. For example, a direct sequence spread spectrum system with a 10 KHz information bandwidth and a 10 MHz channel bandwidth yields a processing gain of 1000, or 30 dB. However, far greater processing gains are achieved by impulse radio systems, where the same 10 KHz information bandwidth is spread across a much greater 2 GHz channel bandwidth, resulting in a theoretical processing gain of 200,000, or 53 dB.
Capacity
It can be shown theoretically, using signal-to-noise arguments, that thousands of simultaneous channels are available to an impulse radio system as a result of its exceptional processing gain.
The average output signal-to-noise ratio of the impulse radio may be calculated for randomly selected time-hopping codes as a function of the number of active users, N<sub>u</sub>, as:
<maths id="MATH-US-00008" num="00008"><math overflow="scroll"><mrow><mrow><msub><mi>SNR</mi><mi>out</mi></msub><mo></mo><mrow><mo>(</mo><msub><mi>N</mi><mi>u</mi></msub><mo>)</mo></mrow></mrow><mo>=</mo><mfrac><msup><mrow><mo>(</mo><mrow><msub><mi>N</mi><mi>s</mi></msub><mo></mo><msub><mi>A</mi><mn>1</mn></msub><mo></mo><msub><mi>m</mi><mi>p</mi></msub></mrow><mo>)</mo></mrow><mn>2</mn></msup><mrow><msubsup><mi>σ</mi><mi>rec</mi><mn>2</mn></msubsup><mo>+</mo><mrow><msub><mi>N</mi><mi>s</mi></msub><mo></mo><msubsup><mi>σ</mi><mi>a</mi><mn>2</mn></msubsup><mo></mo><mrow><munderover><mo>∑</mo><mrow><mi>k</mi><mo>=</mo><mn>2</mn></mrow><msub><mi>N</mi><mi>u</mi></msub></munderover><mo></mo><msubsup><mi>A</mi><mi>k</mi><mn>2</mn></msubsup></mrow></mrow></mrow></mfrac></mrow></math></maths><img file="US7541968B2_D0008.tif" /><br /> where N<sub>s </sub>is the number of pulses integrated per bit of information, A<sub>k </sub>models the attenuation of transmitter k's signal over the propagation path to the receiver, and σ<sub>rec</sub><sup>2 </sup>is the variance of the receiver noise component at the pulse train integrator output. The monocycle wave form-dependent parameters m<sub>p </sub>and σ<sub>a</sub><sup>2 </sup>are given by
<maths id="MATH-US-00009" num="00009"><math overflow="scroll"><mrow><msub><mi>m</mi><mi>p</mi></msub><mo>=</mo><mrow><msubsup><mo>∫</mo><mrow><mo>-</mo><mi>∞</mi></mrow><mi>∞</mi></msubsup><mo></mo><mrow><mrow><mrow><mi>ω</mi><mo></mo><mrow><mo>(</mo><mi>t</mi><mo>)</mo></mrow></mrow><mo></mo><mrow><mo>[</mo><mrow><mrow><mi>ω</mi><mo></mo><mrow><mo>(</mo><mi>t</mi><mo>)</mo></mrow></mrow><mo>-</mo><mrow><mi>ω</mi><mo></mo><mrow><mo>(</mo><mrow><mi>t</mi><mo>-</mo><mi>δ</mi></mrow><mo>)</mo></mrow></mrow></mrow><mo>]</mo></mrow></mrow><mo></mo><mstyle><mspace width="0.2em" height="0.2ex" /></mstyle><mo></mo><mrow><mo>ⅆ</mo><mi>t</mi></mrow></mrow></mrow></mrow></math></maths><maths id="MATH-US-00009-2" num="00009.2"><math overflow="scroll"><mi>and</mi></math></maths><maths id="MATH-US-00009-3" num="00009.3"><math overflow="scroll"><mrow><mrow><msubsup><mi>σ</mi><mi>a</mi><mn>2</mn></msubsup><mo>=</mo><mrow><msubsup><mi>T</mi><mi>f</mi><mrow><mo>-</mo><mn>1</mn></mrow></msubsup><mo></mo><mrow><msubsup><mo>∫</mo><mrow><mo>-</mo><mi>∞</mi></mrow><mi>∞</mi></msubsup><mo></mo><mrow><msup><mrow><mo>[</mo><mrow><msubsup><mo>∫</mo><mrow><mo>-</mo><mi>∞</mi></mrow><mi>∞</mi></msubsup><mo></mo><mrow><mrow><mi>ω</mi><mo></mo><mrow><mo>(</mo><mrow><mi>t</mi><mo>-</mo><mi>s</mi></mrow><mo>)</mo></mrow></mrow><mo></mo><mrow><mi>υ</mi><mo></mo><mrow><mo>(</mo><mi>t</mi><mo>)</mo></mrow></mrow><mo></mo><mstyle><mspace width="0.2em" height="0.2ex" /></mstyle><mo></mo><mrow><mo>ⅆ</mo><mi>t</mi></mrow></mrow></mrow><mo>]</mo></mrow><mn>2</mn></msup><mo></mo><mstyle><mspace width="0.2em" height="0.2ex" /></mstyle><mo></mo><mrow><mo>ⅆ</mo><mi>s</mi></mrow></mrow></mrow></mrow></mrow><mo>,</mo></mrow></math></maths><br /> where ω(t) is the monocycle waveform, U(t)=ω(t)−ω(t−δ) is the template signal waveform, δ is the time shift between the monocycle waveform and the template signal waveform, T<sub>f </sub>is the pulse repetition time, and s is signal.
Multipath and Propagation
One of the advantages of impulse radio is its resistance to multipath fading effects. Conventional narrow band systems are subject to multipath through the Rayleigh fading process, where the signals from many delayed reflections combine at the receiver antenna according to their seemingly random relative phases resulting in possible summation or possible cancellation, depending on the specific propagation to a given location. Multipath fading effects are most adverse where a direct path signal is weak relative to multipath signals, which represents the majority of the potential coverage area of a radio system. In a mobile system, received signal strength fluctuates due to the changing mix of multipath signals that vary as its position varies relative to fixed transmitters, mobile transmitters and signal-reflecting surfaces in the environment.
Impulse radios, however, can be substantially resistant to multipath effects. Impulses arriving from delayed multipath reflections typically arrive outside of the correlation time and, thus, may be ignored. This process is described in detail with reference to <figref idref="DRAWINGS">FIGS. 5B and 5C</figref>. <figref idref="DRAWINGS">FIG. 5B</figref> illustrates a typical multipath situation, such as in a building, where there are many reflectors <b>504</b>B, <b>505</b>B. In this figure, a transmitter <b>506</b>B transmits a signal that propagates along three paths, the direct path <b>501</b>B, path <b>1</b><b>502</b>B, and path <b>2</b><b>503</b>B, to a receiver <b>508</b>B, where the multiple reflected signals are combined at the antenna. The direct path <b>501</b>B, representing the straight-line distance between the transmitter and receiver, is the shortest. Path <b>1</b><b>502</b>B represents a multipath reflection with a distance very close to that of the direct path. Path <b>2</b><b>503</b>B represents a multipath reflection with a much longer distance. Also shown are elliptical (or, in space, ellipsoidal) traces that represent other possible locations for reflectors that would produce paths having the same distance and thus the same time delay.
<figref idref="DRAWINGS">FIG. 5C</figref> illustrates the received composite pulse waveform resulting from the three propagation paths <b>501</b>B, <b>502</b>B, and <b>503</b>B shown in <figref idref="DRAWINGS">FIG. 5B</figref>. In this figure, the direct path signal <b>501</b>B is shown as the first pulse signal received. The path <b>1</b> and path <b>2</b> signals <b>502</b>B, <b>503</b>B comprise the remaining multipath signals, or multipath response, as illustrated. The direct path signal is the reference signal and represents the shortest propagation time. The path <b>1</b> signal is delayed slightly and overlaps and enhances the signal strength at this delay value. The path <b>2</b> signal is delayed sufficiently that the waveform is completely separated from the direct path signal. Note that the reflected waves are reversed in polarity. If the correlator template signal is positioned such that it will sample the direct path signal, the path <b>2</b> signal will not be sampled and thus will produce no response. However, it can be seen that the path <b>1</b> signal has an effect on the reception of the direct path signal since a portion of it would also be sampled by the template signal. Generally, multipath signals delayed, less than one quarter wave (one quarter wave is about 1.5 inches, or 3.5 cm at 2 GHz center frequency) may attenuate the direct path signal. This region is equivalent to the first Fresnel zone in narrow band systems. Impulse radio, however, has no further nulls in the higher Fresnel zones. This ability to avoid the highly variable attenuation from multipath gives impulse radio significant performance advantages.
<figref idref="DRAWINGS">FIGS. 5D</figref>, <b>5</b>E, and <b>5</b>F represent the received signal from a TM-UWB transmitter in three different multipath environments. These figures are approximations of typical signal plots. <figref idref="DRAWINGS">FIG. 5D</figref> illustrates the received signal in a very low multipath environment. This may occur in a building where the receiver antenna is in the middle of a room and is a relatively short, distance, for example, one meter, from the transmitter. This may also represent signals received from a larger distance, such as 100 meters, in an open field where there are no objects to produce reflections. In this situation, the predominant pulse is the first received pulse and the multipath reflections are too weak to be significant. <figref idref="DRAWINGS">FIG. 5E</figref> illustrates an intermediate multipath environment. This approximates the response from one room to the next in a building. The amplitude of the direct path signal is less than in <figref idref="DRAWINGS">FIG. 5D</figref> and several reflected signals are of significant amplitude. <figref idref="DRAWINGS">FIG. 5F</figref> approximates the response in a severe multipath environment such as propagation through many rooms, from corner to corner in a building, within a metal cargo hold of a ship, within a metal truck trailer, or within an intermodal shipping container. In this scenario, the main path signal is weaker than in <figref idref="DRAWINGS">FIG. 5E</figref>. In this situation, the direct path signal power is small relative to the total signal power from the reflections.
An impulse radio receiver can receive the signal and demodulate the information using either the direct path signal or any multipath signal peak having sufficient signal-to-noise ratio. Thus, the impulse radio receiver can select the strongest response from among the many arriving signals. In order for the multipath signals to cancel and produce a null at a given location, dozens of reflections would nave to be cancelled simultaneously and precisely while blocking the direct path, which is a highly unlikely scenario. This time separation of multipath signals together with time resolution and selection by the receiver permit a type of time diversity that virtually eliminates cancellation of the signal. In a multiple correlator rake receiver, performance is further improved by collecting the signal power from multiple signal peaks for additional signal-to-noise performance.
Where the system of <figref idref="DRAWINGS">FIG. 5B</figref> is a narrow band system and the delays are small relative to the data bit time, the received signal is a sum of a large number of sine waves of random amplitude and phase. In the idealized limit, the resulting envelope amplitude has been shown to follow a Rayleigh probability distribution as follows:
<maths id="MATH-US-00010" num="00010"><math overflow="scroll"><mrow><mrow><mi>p</mi><mo></mo><mrow><mo>(</mo><mi>r</mi><mo>)</mo></mrow></mrow><mo>=</mo><mrow><mfrac><mi>r</mi><msup><mi>σ</mi><mn>2</mn></msup></mfrac><mo></mo><mrow><mi>exp</mi><mo>(</mo><mfrac><mrow><mo>-</mo><msup><mi>r</mi><mn>2</mn></msup></mrow><mrow><mn>2</mn><mo></mo><mstyle><mspace width="0.3em" height="0.3ex" /></mstyle><mo></mo><msup><mi>σ</mi><mn>2</mn></msup></mrow></mfrac><mo>)</mo></mrow></mrow></mrow></math></maths><img file="US7541968B2_D0009.tif" /><br /> where r is the envelope amplitude of the combined multipath signals, and σ(2)<sup>1/2 </sup>is the RMS power of the combined multipath signals. The Rayleigh distribution curve in <figref idref="DRAWINGS">FIG. 5G</figref> shows that 10% of the time, the signal is more than 10 dB attenuated. This suggests that 10 dB fade margin is needed to provide 90% link availability. Values of fade margin from 10 to 40 dB have been suggested for various narrow band systems, depending on the required reliability. This characteristic has been the subject of much research and can be partially improved by such techniques as antenna and frequency diversity, but these techniques result in additional complexity and cost.
In a high multipath environment such as inside homes, offices, warehouses, automobiles, trailers, shipping containers, or outside in an urban canyon or other situations where the propagation is such that the received signal is primarily scattered energy, impulse radio systems can avoid the Rayleigh fading mechanism that limits performance of narrow band systems, as illustrated in <figref idref="DRAWINGS">FIGS. 5H and 5I</figref>. <figref idref="DRAWINGS">FIG. 5H</figref> depicts an impulse radio system in a high multipath environment <b>500</b>H consisting of a transmitter <b>506</b>H and a receiver <b>508</b>H. A transmitted signal follows a direct path <b>501</b>H and reflects off reflectors <b>503</b>E via multiple paths <b>502</b>H. <figref idref="DRAWINGS">FIG. 5I</figref> illustrates the combined signal received by the receiver <b>508</b>H over time with the vertical axis being signal strength in volts and the horizontal axis representing time in nanoseconds. The direct path <b>501</b>H results in the direct path signal <b>502</b>I while the multiple paths <b>502</b>H result in multipath signals <b>504</b>I. In the same manner described earlier for <figref idref="DRAWINGS">FIGS. 5B and 5C</figref>, the direct path signal <b>502</b>I is sampled, while the multipath signals <b>504</b>I are not, resulting in Rayleigh fading avoidance.
Distance Measurement and Positioning
Impulse systems can measure distances to relatively fine resolution because of the absence of ambiguous cycles in the received waveform. Narrow band systems, on the other hand, are limited to the modulation envelope and cannot easily distinguish precisely which RF cycle is associated with each data bit because the cycle-to-cycle amplitude differences are so small they are masked by link or system noise. Since an impulse radio waveform has no multi-cycle ambiguity, it is possible to determine waveform position to less than a wavelength, potentially down to the noise floor of the system. This time position measurement can be used to measure propagation delay to determine link distance to a high degree of precision. For example, 30 ps of time transfer resolution corresponds to approximately centimeter distance resolution. See, for example, U.S. Pat. No. 6,133,876, issued Oct. 17, 2000, titled “System and Method for Position Determination by impulse Radio,” and U.S. Pat. No. 6,111,536, issued Aug. 29, 2000, titled “System and Method for Distance Measurement by Inphase and Quadrature Signals in a Radio System,” both of which are incorporated herein by reference.
In addition to the methods articulated above, impulse radio technology along with Time Division Multiple Access algorithms and Time Domain packet radios can achieve geo-positioning capabilities in a radio network. This geo-positioning method is described in co-owned, co-pending U.S. Pat. No. 6,300,903 entitled “System and Method for Person or Object Position location Utilizing Impulse Radio,” which is incorporated herein by reference.
Power Control
Power control systems comprise a first transceiver that transmits an impulse radio signal to a second transceiver. A power control update is calculated according no a performance measurement of the signal received at the second transceiver. The transmitter power of either transceiver, depending on the particular setup, is adjusted according to the power control update. Various performance measurements are employed to calculate a power control update, including bit error rate, signal-to-noise ratio, and received signal strength, used alone or in combination. Interference is thereby reduced, which may improve performance where multiple impulse radios are operating in close proximity and their transmissions interfere with one another. Reducing the transmitter power of each radio to a level that produces satisfactory reception increases the total number of radios that can operate in an area without saturation. Reducing transmitter power also increases transceiver efficiency.
For greater elaboration of impulse radio power control, see patent application titled “System and Method for Impulse Radio Power Control,” application Ser. No. 09/332,501, filed Jun. 14, 1999, now U.S. Pat. No. 6,539,213assigned to the assignee of the present invention, and incorporated herein by reference.
Mitigating Effects of Interference
A method for mitigating interference in impulse radio systems comprises the steps of conveying the message in packets, repeating conveyance of selected packets to make up a repeat package, and conveying the repeat package a plurality of times at a repeat period greater than twice the period of occurrence of the interference. The communication may convey a message from a proximate transmitter to a distant receiver, and receive a message by a proximate receiver from a distal transmitter. In such a system, the method comprises the steps of providing interference indications by the distal receiver to the proximate transmitter, using the interference indications to determine predicted noise periods, and operating the proximate transmitter to convey the message according to at least one of the following: (1) avoiding conveying the message during noise periods, (2) conveying the message at a higher power during noise periods, (3) increasing error detection coding in the message during noise periods, (4) re-transmitting the message following noise periods, (5) avoiding conveying the message when interference is greater than a first strength, (6) conveying the message at a higher power when the interference is greater than a second strength, (7) increasing error detection coding in the message when the interference is greater than a third strength, and (8) re-transmitting a portion of the message after interference has subsided to less than a predetermined strength.
For greater elaboration of mitigating interference in impulse radio systems, see the patent application titled “Method for Mitigating Effects of Interference in Impulse Radio Communication,” application Ser. No. 09/587,033, filed Jun. 2, 2000, now U.S. Pat. No. 6,823,022, assigned to the assignee of the present invention, and incorporated herein by reference.
Moderating interference in Equipment Control Applications
Yet another improvement to impulse radio includes moderating interference with impulse radio wireless control of an appliance. The control is affected by a controller remote from the appliance which transmits impulse radio digital control signals to the appliance. The control signals have a transmission power and a data rate. The method comprises the steps of establishing a maximum acceptable noise value for a parameter relating to interfering signals and a frequency range for measuring the interfering signals, measuring the parameter for the interference signals within the frequency range, and effecting an alteration of transmission of the control signals when the parameter exceeds the maximum acceptable noise value.
For greater elaboration of moderating interference while effecting impulse radio wireless control of equipment, see patent application titled “Method and apparatus for Moderating Interference While Effecting impulse Radio Wireless Control of Equipment,” application Ser. No. 09/586,163, filed Jun. 2, 1999, now U.S. Pat. No. 6,571,089, and assigned to the assignee of the present invention, and incorporated herein by reference.
Exemplary Transceiver Implementation
Transmitter
An exemplary embodiment of an impulse radio transmitter <b>602</b> of an impulse radio communication system having an optional subcarrier channel will now be described with reference to <figref idref="DRAWINGS">FIG. 6</figref>.
The transmitter <b>602</b> comprises a time base <b>604</b> that generates a periodic timing signal <b>606</b>. The time base <b>604</b> typically comprises a voltage controlled oscillator (VCO), or the like, having a high timing accuracy and low jitter, on the order of picoseconds (ps). The control voltage to adjust the VCO center frequency is set at calibration to the desired center frequency used to define the transmitter's nominal pulse repetition rate. The periodic timing signal <b>606</b> is supplied to a precision timing generator <b>608</b>.
The precision timing generator <b>608</b> supplies synchronizing signals <b>610</b> to the code source <b>612</b> and utilizes the code source output <b>614</b>, together with an optional, internally generated subcarrier signal, and an information signal <b>616</b>, to generate a modulated, coded timing signal <b>618</b>.
An information source <b>620</b> supplies the information signal <b>616</b> to the precision timing generator <b>608</b>. The information signal <b>616</b> can be any type of intelligence, including digital bits representing voice, data, imagery, or the like, analog signals, or complex signals.
A pulse generator <b>622</b> uses the modulated, coded timing signal <b>618</b> as a trigger signal to generate output pulses. The output pulses are provided to a transmit antenna <b>624</b> via a transmission line <b>626</b> coupled thereto. The output pulses are converted into propagating electromagnetic pulses by the transmit antenna <b>624</b>. The electromagnetic pulses are called the emitted signal, and propagate to an impulse radio receiver <b>702</b>, such as shown in <figref idref="DRAWINGS">FIG. 7</figref>, through a propagation medium. In a preferred embodiment, the emitted signal is wide-band or ultrawide-band, approaching a monocycle pulse as in <figref idref="DRAWINGS">FIG. 1B</figref>. However, the emitted signal may be spectrally modified by filtering of the pulses, which may cause them to have more sere crossings (more cycles) in the time domain, requiring the radio receiver to use a similar waveform as the template signal for efficient conversion.
Receiver
An exemplary embodiment of an impulse radio receiver (hereinafter called the receiver) for the impulse radio communication system is now described with reference to <figref idref="DRAWINGS">FIG. 7</figref>.
The receiver <b>702</b> comprises a receive antenna <b>704</b> for receiving a propagated impulse radio signal <b>706</b>. A received signal <b>708</b> is input to a cross correlator or sampler <b>710</b>, via a receiver transmission line, coupled to the receive antenna <b>704</b>. The cross correlation <b>710</b> produces a baseband output <b>712</b>.
The receiver <b>702</b> also includes a precision timing generator <b>714</b>, which receives a periodic timing signal <b>716</b> from a receiver time base <b>718</b>. This time base <b>718</b> may be adjustable and controllable in time, frequency, or phase, as required by the lock loop in order to lock on the received signal <b>708</b>. The precision timing generator <b>714</b> provides synchronizing signals <b>720</b> to the code source <b>722</b> and receives a code control signal <b>724</b> from the code source <b>722</b>. The precision tinning generator <b>714</b> utilizes the periodic timing signal <b>716</b> and code control signal <b>724</b> to produce a coded timing signal <b>726</b>. The template generator <b>728</b> is triggered by this coded timing signal <b>726</b> and produces a train of template signal pulses <b>730</b> ideally having waveforms substantially equivalent to each pulse of the received signal <b>708</b>. The code for receiving a given signal is the same code utilized by the originating transmitter to generate the propagated signal. Thus, the timing of the template pulse train matches the timing of the received signal pulse train, allowing the received signal <b>708</b> to be synchronously sampled in the correlator <b>710</b>. The correlator <b>710</b> preferably comprises a multiplier followed by a short term integrator to sum the multiplier product over the pulse interval.
The output of the correlator <b>710</b> is coupled to a subcarrier demodulator <b>732</b>, which demodulates the subcarrier information signal from the optional, subcarrier. The purpose of the optional subcarrier process, when used, is to move the information signal away from DC (zero frequency) to improve immunity to low frequency noise and offsets. The output of the subcarrier demodulator is then filtered or integrated in the pulse summation stage <b>734</b>. A digital system embodiment is shown in <figref idref="DRAWINGS">FIG. 7</figref>. In this digital system, a sample and hold <b>736</b> samples the output <b>735</b> of the pulse summation stage <b>734</b> synchronously with the completion of the summation of a digital bit or symbol. The output of sample and hold <b>736</b> is then compared with a nominal zero (or reference) signal output in a detector stage <b>738</b> to provide an output signal <b>739</b> representing the digital state or the output voltage of sample and hold <b>736</b>.
The baseband signal <b>712</b> is also input to a lowpass filter <b>742</b> (also referred to as lock loop filter <b>742</b>). A control loop comprising the lowpass filter <b>742</b>, time base <b>718</b>, precision timing generator <b>714</b>, template generator <b>728</b>, and correlator <b>710</b> is used to generate an error signal <b>744</b>. The error signal <b>744</b> provides adjustments to the adjustable time base <b>718</b> to position in time the periodic timing signal <b>726</b> in relation to the position of the received signal <b>708</b>.
In a transceiver embodiment, substantial economy can be achieved by snaring part or all of several of she functions of the transmitter <b>602</b> and receiver <b>702</b>. Some of these include the time base <b>718</b>, precision timing generator <b>714</b>, code source <b>722</b>, antenna <b>704</b>, and the like.
<figref idref="DRAWINGS">FIGS. 8A-8C</figref> illustrate the cross correlation process and the correlation function. <figref idref="DRAWINGS">FIG. 8A</figref> shows the waveform of a template signal. <figref idref="DRAWINGS">FIG. 8B</figref> shows the waveform of a received impulse radio signal at a set of several possible time offsets. <figref idref="DRAWINGS">FIG. 8C</figref> represents the output of the cross correlator for each of the time offsets of <figref idref="DRAWINGS">FIG. 8B</figref>. For any given pulse received, there is a corresponding point that is applicable on this graph. This is the point corresponding to the time offset of the template signal used to receive that pulse. Further examples and details of precision, timing can be found, described in U.S. Pat. Nos. 5,677,927 and 6,304,623 both of which are incorporated herein by reference.
Because of the unique nature of impulse radio receivers, several modifications have been recently made to enhance system capabilities. Modifications include the utilization of multiple correlators to measure the impulse response of a channel to the maximum communications range of the system and to capture information on data symbol statistics. Further, multiple correlators enable rake pulse correlation techniques, more efficient acquisition and tracking implementations, various modulation schemes, and collection of time-calibrated pictures of received waveforms. For greater elaboration of multiple correlator techniques, see patent application titled. “System and Method of using Multiple Correlator Receivers in an Impulse Radio System”, application Ser. No. 09/537,264, filed Mar. 29, 2000, now abandoned, assigned to the assignee of the present invention, and incorporated herein by reference.
Methods to improve the speed at which a receiver can acquire and lock onto an incoming impulse radio signal have been developed. In one approach, a receiver includes an adjustable time base to output a sliding periodic timing signal, having an adjustable repetition rate and a decode timing modulator to output a decode signal in response to the periodic timing signal. The impulse radio signal is cross-correlated with the decode signal to output a baseband signal. The receiver integrates T samples of the baseband signal and a threshold detector uses the integration results to detect channel coincidence. A receiver controller stops sliding the time base when channel coincidence is detected. A counter and extra count logic, coupled to the controller, are configured to increment or decrement the address counter by one or more extra counts after each T pulses is reached in order to shift the code modulo for proper phase alignment of the periodic timing signal and the received impulse radio signal. This method is described in more detail in U.S. Pat. No. 5,832,035 to Fullerton, incorporated herein by reference.
In another approach, a receiver obtains a template pulse train and a received impulse radio signal. The receiver compares the template pulse train and the received impulse radio signal. The system performs a threshold check on the comparison result. If the comparison result passes the threshold check, the system locks on the received impulse radio signal. The system may also perform a quick check, a synchronisation check, and/or a command check of the impulse radio signal. For greater elaboration of this approach, see the patent application titled “Method and System for Fast Acquisition of Ultra Wideband Signals,” application Ser. No. 09/538,292, filed Mar. 29, 2000, now U.S. Pat. No. 6,556,021, assigned to the assignee of the present invention, and incorporated herein by reference.
A receiver has been developed that includes a baseband signal converter device and combines multiple converter circuits and an RF amplifier in a single integrated circuit package. For greater elaboration of this receiver, see U.S. Pat. No. 6,421,389 entitled “Baseband Signal Converter for a Wideband Impulse Radio Receiver,” which is assigned to the assignee of the present invention, and incorporated herein by reference.
UWB Intrusion Detection System and Method
Referring to <figref idref="DRAWINGS">FIGS. 9-22</figref>, there are disclosed three embodiments of exemplary intrusion detection systems <b>1100</b>, <b>1100</b>′ and <b>1100</b>″ and preferred methods <b>1600</b>, <b>1600</b>′ and <b>1600</b>″ in accordance with the present invention.
Although the present invention is described as using impulse radio technology, it should be understood that the present invention can be used with any type of ultra wideband technology, but is especially suited for use with time-modulated ultra wideband technology. Accordingly, the exemplary intrusion detection systems <b>1100</b>, <b>1100</b>′ and <b>1100</b>″ and preferred methods <b>1600</b>, <b>1600</b>′ and <b>1600</b>″ should not be construed in a limited manner.
Generally, in the first embodiment, the intrusion detection system <b>1100</b> and method <b>1600</b> utilize impulse radio technology to detect when an intruder <b>1102</b> has entered a protection some <b>1104</b> (see FIGS. <b>11</b> and <b>14</b>-<b>16</b>). In the second embodiment, the intrusion detection system <b>1100</b>′ and method <b>1600</b>′ can utilize impulse radio technology to determine a location of the intruder <b>1102</b>′ within the protection zone <b>1104</b>′ and also track the movement of the intruder <b>1102</b>′ within the protection zone <b>1104</b>′ (see FIGS. <b>12</b> and <b>17</b>-<b>19</b>). In the third embodiment, the intrusion detection system <b>1100</b>″ and method <b>1600</b>″ utilize impulse radio technology to create a specially shaped protection zone <b>1104</b>″ before trying to detect when and where the intruder <b>1102</b>″ has penetrated and moved within the protection zone <b>1104</b>″ (see FIGS. <b>13</b> and <b>20</b>-<b>21</b>). Each of the three embodiments are briefly described below with respect to <figref idref="DRAWINGS">FIGS. 9-13</figref> prior to describing each embodiment in greater detail with respect to <figref idref="DRAWINGS">FIGS. 14-21</figref>.
The present invention as described uses one or more ultra-wideband (UWB) scanning receivers <b>900</b> and a UWB transmitter <b>1000</b> as bistatic radar (s) to enable short-range target detection and positioning. The intrusion detection system described provides a robust, cost effective way for detecting the introduction of foreign objects including intruders of appreciable radar cross section (RCS) into a constrained and stationary environment such as a protection zone. Some of the benefits of implementing UWB technology for this application is that it enables the intrusion detection system to offer excellent time (distance) resolution, clutter rejection, and also enables the intrusion detection system to extend the range of coverage through barriers. In addition, due to the low transmit power, the intrusion detection system is resistant to both detection and jamming.
UWB Scanning Receiver and UWB Transmitter
<figref idref="DRAWINGS">FIGS. 9-10</figref>, illustrate exemplary block diagrams of the UWB scanning receiver <b>900</b> and its companion the UWB transmitter <b>1000</b>. Time Domain Corporation has developed the UWB scanning receiver <b>900</b> that implements time-modulated ultra-wideband (TM-UWB) technology and utilizes short Gaussian, monocycle pulses at relatively high pulse repetition frequencies (PRF). The pulse durations are less than 1 ns with a PRF exceeding 1 MHz. The interval between pulses is not fixed but is time coded using sequences of psuedo-random numbers. See, withington, Reinhardt, and Stanley, “Preliminary Results of an Ultra-Wideband (Impulse) Scanning Receiver”, Paper S38P3, Milcom 1999, Atlantic City, N.J., November 1999 which is incorporated herein.
In the implementation shown, the UWB transmitter 1000 emits a stream of 500 Ps TM-UWB coded pulses at a PRF of 10 MHz using an independent timing system 1002 and 1004. The UWB scanning receiver <b>900</b> includes two correlators <b>906</b> and <b>908</b> each of which are controlled by an independent timing system <b>902</b>, <b>904</b> and <b>910</b>. Time Domain has also developed these precision., low noise synchronous programmable time delay integrated circuits <b>902</b>, <b>904</b>, <b>910</b>. <b>1002</b> and <b>1004</b>. See, L. Larson, et al., “A SI/Ge HBT Timing Generator IC for High bandwidth Impulse Radio Applications,”Custom Integrated Circuits Conference 1999, San Diego, CA. May 1999 .
The tracking correlator <b>906</b> within the UWB receiver <b>900</b> synchronizes with and is able to track the received purse train, providing coherent transmission. Any offset between the receiver's internal coded waveform and the received coded waveform is detected as an error voltage in the correlator's lock loop. A frequency offset is synthesized to offset the pseudo-random time hopping word, thus ensuring the receiver's clock <b>910</b> is within 20 ps RMS of the transmitter's clock <b>1004</b>. Once the tracking correlator <b>906</b> is locked to the received signal, the scanning correlator <b>908</b> can sample the received waveform at precise time delays generating a complete picture of the received signal. This picture is representative of the actual distortion of the transmitted Gaussian waveform after being filtered by the environment.
It should be noted that the scanning correlator <b>908</b> can dwell at a time position for a user-specified number of integrated pulses to mitigate the effects of noise and other non-coherent interference. Time resolution steps as small as 3.052 ps can be specified but a typical time sample resolution is approximately 30 ps.
Implementing the UWB scanning receiver <b>900</b> in a multipath environment results in a scanning receiver output that represents a psuedo-channel impulse of the propagation channel. The multipart channel is characterized by the line of sight (LOS) signal (if one exists) along with delayed, attenuated copies of the transmitted signal corresponding to reflections off of objects including intruders in the environment. The multipath structure of the propagation channel is unique to the placement of objects in the protection zone as well as the placement of the transmit and receive antennas <b>1000</b> and <b>911</b>, respectively. Assuming that the propagation environment is stationary (i.e. all reflective surfaces and antennas are fixed and no intruders are present), successive multipath scans taken by the scanning receiver <b>900</b> are identical. This can be verified to ensure stationarity via a simple subtraction and digital filtering of the successive scan waveforms. As described in greater detail, below, the scan waveforms that are made when an intruder is not present are later compared to scan waveforms that are made when an intruder is present which enables the defection of the intruder. Further examples and details about the basic components within the UWB scanning receiver <b>900</b> and the UWB transmitter <b>1000</b> can be found in the commonly owned U.S. patent application Ser. No. 09/537,264, filed Mar. 29, 2000, now abandoned, entitled “system and Method of using Multiple Correlator Receivers in an Impulse Radio System” which is incorporated herein by reference.
Intruder Detection (First Embodiment)
Referring to <figref idref="DRAWINGS">FIG. 11</figref>, there is illustrated a diagram of the basic components of the first embodiment of the intrusion defection system <b>1100</b>. Basically, the intrusion detection system <b>1000</b> includes the UWB scanning receiver <b>900</b> and the UWB transmitter <b>1000</b> which together function as a bistatic radar to facilitate target detection. The introduction of any new object such as an intruder <b>1102</b> having an appreciable RCS into the environment alters the multipath structure of the protection zone <b>1104</b> and distorts the received scar waveform. The presence of the intruder <b>1102</b> is now detectable in the subtraction of successive scans; any significant change in a portion of this difference reveals the range of the intruder <b>1102</b> with respect to the placement of the UWB scanning receiver <b>900</b>. Knowing the distance from the UWB transmitter <b>1000</b> to the UWB scanning receiver <b>900</b> and knowing the relative time delay of the target response in the scanned waveform, the position of the intruder <b>1102</b> is known to lie somewhere on an ellipse whose foci are the UWB transmitter <b>1000</b> and the UWB receiver <b>900</b>. As illustrated, the intruder <b>1102</b> is located in one of two possible locations.
Empirical data has shown that for successive scans of an environment in which no intruder <b>1102</b> is present, limitations of the UWB scanning receiver <b>900</b> such as timer drift and small amplitude variations prevent successive scans from having perfect subtraction. This creates a certain clutter threshold in the subtracted waveform. The limitations of the UWB scanning receiver <b>900</b> require that the intruder <b>1102</b> introduced, to the environment must reflect a return to the receive antenna <b>911</b> that is distinguishable from clutter. Effective filters and relevant thresholding techniques are used to combat this drift. Again, more details about the first embodiment of the intrusion detection system <b>1100</b> and various scanned waveforms are described below with respect to <figref idref="DRAWINGS">FIGS. 14-16</figref>.
Intruder Positioning (Second Embodiment)
Referring to <figref idref="DRAWINGS">FIG. 12</figref>, there is illustrated a block diagram of the basic components of the second embodiment of the intrusion detection system <b>1100</b>′. The intrusion detection system <b>1100</b>′ extends the functionality of the intrusion detection system <b>1100</b> by implementing multiple UWB scanning receivers <b>900</b>′ (three shown) which can interact with the UWB transmitter <b>1000</b>′ to triangulate the current position of the intruder <b>1102</b>′. Coordinating the measured target ranges of multiple UWB scanning receivers <b>900</b>′ can allow for precise positioning of the intruder <b>1102</b>′ via an intersection of the ranging ellipses of known distance of the intruder <b>1102</b>′ from each transmitter-receiver pair. This triangulation of the intruder <b>1102</b>′ is graphically shown, in <figref idref="DRAWINGS">FIG. 12</figref>.
Empirical data has shown that the UWB scanning receivers <b>900</b>′ have sub-nanosecond, time resolution, corresponding to ranging accuracy of less than 1 foot. The ranging ellipses of each individual transmitter/receiver are solved, to determine the position of intruder <b>1102</b>′ via a numerical algorithm such as Newton-Raphson method or some other techniques.
Design the Shape of the Protection Zone (Third Embodiment)
The main difference between the second embodiment of the intrusion detection system <b>1100</b>′ and the third embodiment of the intrusion detection system <b>1100</b>″ is that the third embodiment enables the creation of an unusually shaped protection zone <b>1104</b>″ within the region that the target ellipses could converge due to an intrusion instead of using the elliptical zones shows in <figref idref="DRAWINGS">FIG. 12</figref>. Prior to arming the intrusion detection system <b>1100</b>″, the system can be put into a “learning mode”. During the “learning mode”, a person <b>1300</b>″ would traverse the perimeter of the projection zone <b>1104</b>″ to be protected and the intrusion detection system <b>1100</b>″ would track the person <b>1300</b>″ and build a two and possibly three-dimensional representation of the shape of the protection zone <b>1104</b>″ (see <figref idref="DRAWINGS">FIG. 13</figref>).
DETAILED DESCRIPTION OF FIRST EMBODIMENT
Referring to <figref idref="DRAWINGS">FIG. 14</figref>, there is a diagram illustrating the first embodiment of the intrusion detection system <b>1100</b> in accordance with the present invention. The intrusion detection system <b>1100</b> includes a transmitting impulse radio unit <b>1000</b> (described above as the UWB transmitter <b>1000</b>) and a receiving impulse radio unit <b>900</b> (described above as the UWB scanning receiver <b>900</b>). The transmitting impulse radio unit <b>1000</b> transmits an impulse radio signal <b>1402</b> having a known pseudorandom sequence of pulses that look like a series of Gaussian waveforms (see <figref idref="DRAWINGS">FIG. 1</figref>).
Initially, the impulse radio signal <b>1402</b> is transmitted within and through a protection zone <b>1104</b> that does not have an intruder <b>1102</b>. The receiving impulse radio unit <b>900</b> receives the impulse radio signal <b>1402</b> and generates a first waveform <b>1502</b> (an exemplary first waveform is shown in <figref idref="DRAWINGS">FIG. 15</figref><i>a</i>). The first waveform <b>1502</b> is a time domain representation of the actual distortion of the transmitted Gaussian waveform after being filtered by the environment around the transmitting impulse radio unit <b>1000</b> and the receiving impulse radio unit <b>900</b>. In other words, the first waveform <b>1502</b> corresponds to the received impulse shape of she impulse radio signal <b>1402</b> that is received by the receiving impulse radio unit <b>900</b> when there is no intruder <b>1102</b> located in the protection zone <b>1104</b>.
After the generation of the first waveform <b>1502</b>, the receiving impulse radio unit <b>900</b> receives at a subsequent time “t<sub>s</sub>” the impulse radio signal <b>1402</b> having a known pseudorandom sequence of pulses that are similar to the pulses initially transmitted by the transmitting impulse radio unit <b>1000</b> during the generation of the first waveform <b>1502</b>. However at this time, the impulse radio signal <b>1402</b> is transmitted within and through a protection zone <b>1104</b> that does have an intruder <b>1102</b>. In particular, the receiving impulse radio unit <b>900</b> receives the impulse radio signal <b>1402</b> that passed over a direct path <b>1404</b> between the transmitting impulse radio unit <b>1000</b> and the receiving impulse radio unit <b>900</b>. The presence of the intruder <b>1102</b> causes the receiving impulse radio unit <b>900</b> to also receive the impulse radio signal <b>1402</b> that passed over an indirect path <b>1406</b> between the transmitting impulse radio unit <b>1000</b> and the receiving impulse radio unit <b>900</b>. The receiving impulse radio unit <b>900</b> receives both of these impulse radio signals <b>1402</b> in addition to other reflected impulse radio signals <b>1402</b> (not shown) over time and generates a second waveform <b>1504</b> (an exemplary second waveform <b>1504</b> is shown in <figref idref="DRAWINGS">FIG. 15</figref><i>b</i>). The second waveform <b>1504</b> is a time domain representation of the actual distortion of the transmitted Gaussian waveforms after being bounced of the intruder <b>1102</b> and filtered by the environment around the transmitting impulse radio unit <b>1000</b> and the receiving impulse radio unit <b>900</b>. In other words, the second waveform <b>1504</b> corresponds to the received impulse shapes of the impulse radio signals <b>1402</b> that are received by the receiving impulse radio unit <b>900</b> when the intruder <b>1102</b> is located in the protection zone <b>1104</b>.
The receiving impulse radio unit <b>900</b> includes a processor <b>1408</b> that compares the first waveform <b>1502</b> and the second waveform <b>1504</b> to determine whether there is a change between the first waveform <b>1502</b> and the second waveform <b>1504</b> caused by an intruder <b>1102</b> entering the protection zone <b>1104</b>. To illustrate this change between waveforms reference is made to <figref idref="DRAWINGS">FIGS. 15</figref><i>a </i>and <b>15</b><i>b</i>, where there are illustrated two exemplary waveforms <b>1502</b> and <b>1504</b> that could be generated by the receiving impulse radio unit <b>900</b>. The first waveform <b>1502</b> has an initial wavefront <b>1503</b> representative of the first received impulse radio pulses of the impulse radio signal <b>1402</b>. Likewise, the second waveform <b>1504</b> generated after the first waveform <b>1502</b> has an initial wavefront <b>1506</b> representative of the first received impulse radio pulse of the subsequently received impulse radio signal <b>1402</b>. In addition, the second waveform <b>1504</b> has a multipath reflection part <b>1508</b> caused, by the intruder <b>1102</b> that was absent in the first waveform <b>1502</b> but present in the second waveform <b>1504</b>. This multipath reflection part <b>1508</b> is caused by the reception of the impulse radio signal <b>1402</b> that bounced off the intruder <b>1102</b> and passed over the indirect path <b>1406</b> between the transmitting impulse radio unit <b>1000</b> and the receiving impulse radio unit <b>900</b>. The distance “d” between the intruder <b>1102</b> and the receiving impulse radio unit <b>900</b> can be calculated hue wing the elapsed time “t” between the initial wavefront <b>1506</b> and the multipath reflection part <b>1508</b> of the second, waveform <b>1504</b>. Once the distance “d” is calculated, the intruder <b>1102</b> could be in one of many places indicated by the ellipse shown in <figref idref="DRAWINGS">FIG. 14</figref> (shown are two possible positions of the intruder <b>1102</b>).
It should be understood that there may be many items (e.g., walls, trees, furniture . . . ) within the protection sons <b>1104</b> that could cause a multipath reflection part in the first and second waveforms <b>1502</b> and <b>1504</b> but it is the difference between the two waveforms <b>1502</b> and <b>1504</b> that indicates the presence of one or more intruders <b>1102</b>. Moreover, it should be noted that the shape of the protection zone <b>1104</b> in the first embodiment is basically arbitrary as compared to the specially designed shape of the protection rose <b>1104</b>″ in the third embodiment.
Referring to <figref idref="DRAWINGS">FIG. 16</figref>, there is a flowchart illustrating the basic steps of a first embodiment of the preferred method <b>1600</b> of the present invention. Beginning at step <b>1602</b>, the transmitting impulse radio unit <b>1000</b> operates to transmit the impulse radio signal <b>1402</b>. At this time, the impulse radio signal <b>1402</b> is made up of impulse radio pulses that are transmitted within and through a protection zone <b>1104</b> that does not have an intruder <b>1102</b>. A more detailed discussion about the transmitting impulse radio unit <b>1000</b> has been provided above with respect to <figref idref="DRAWINGS">FIG. 10</figref>.
At step <b>1604</b>, the receiving impulse radio unit <b>900</b> operates to receive the impulse radio signal <b>1402</b> and generate the first waveform <b>1502</b>. Again, the receiving impulse radio unit <b>900</b> receives the impulse radio signal <b>1402</b> and generates a first waveform <b>1502</b> (see <figref idref="DRAWINGS">FIG. 15</figref><i>a</i>) that is a time domain representation of the actual distortion of the transmitted Gaussian waveform after being filtered, by the environment around the transmitting impulse radio unit <b>1000</b> and the receiving impulse radio unit <b>900</b>. In other words, the first waveform <b>1502</b> corresponds to the received impulse shape of the impulse radio signal <b>1402</b> that is received by the receiving impulse radio unit <b>900</b> when there is no intruder <b>1102</b> located in the protection zone <b>1104</b>. A more detailed discussion about the receiving impulse radio unit <b>1000</b> has been provided above with respect to <figref idref="DRAWINGS">FIG. 9</figref>.
At step <b>1606</b> and at a subsequent time with respect to steps <b>1602</b> and <b>1604</b>, the receiving impulse radio unit <b>900</b> operates to receive the impulse radio signal <b>1402</b> and generate the second waveform <b>1504</b>. In the present example, the second, waveform <b>1504</b> (see <figref idref="DRAWINGS">FIG. 15</figref><i>b</i>) illustrates what the impulse radio signals <b>1402</b> received by the receiving impulse radio unit <b>900</b> looks like in the time domain with an intruder <b>1102</b> located in the protection zone <b>1104</b>. In other words, the second waveform <b>1504</b> corresponds to the received impulse shape of the impulse radio signals <b>1402</b> that are received by the receiving impulse radio unit <b>900</b> over the direct path <b>1404</b> and the indirect path <b>1406</b> when the intruder <b>1102</b> is located in the protection zone <b>1104</b>.
At step <b>1608</b>, the processor <b>1408</b> within the receiving impulse radio unit <b>900</b> operates to compare the first waveform <b>1502</b> and the second waveform <b>1504</b> to determine whether there is a change between the first waveform <b>1502</b> and the second waveform <b>1504</b> caused by an intruder <b>1102</b> entering the protection zone <b>1104</b>. In the present example, there is a change between the first waveform <b>1502</b> and the second waveform <b>1504</b> because an intruder <b>1102</b> was not present when the first waveform <b>1502</b> was generated foot the intruder <b>1102</b> was present, when the second waveform <b>1504</b> was generated by the receiving impulse radio unit <b>900</b> (see <figref idref="DRAWINGS">FIGS. 15</figref><i>a</i>-<b>15</b><i>b</i>). This change is noticeable due to the presence of the multipath reflection part <b>1508</b> caused by the intruder <b>1102</b>. Of course, the receiving impulse radio unit <b>900</b> may generate many second waveforms in which there is no difference or very little difference with a first waveform because an intruder <b>1102</b> was not present. If an intruder <b>1102</b> is not present in the protection zone <b>1104</b> then the method <b>1600</b> returns to and repeats steps <b>1606</b> and <b>1608</b> until an intruder <b>1102</b> is determined to be present in the protection zone <b>1104</b>.
At step <b>1610</b>, if the intruder <b>1102</b> is determined to be in the protection zone <b>1104</b>, the processor <b>1408</b> could then calculate the difference “d” between the direct path between the transmitter <b>1000</b> and receiver <b>900</b> and the indirect path <b>1402</b> by knowing the elapsed time “t” between the initial wavefront <b>1506</b> and the multipath reflection part <b>1508</b> of the second waveform <b>1504</b> (see <figref idref="DRAWINGS">FIG. 15</figref><i>b</i>). For instance, the distance “d” can be calculated to be 0.984 feet for each nanosecond, in the elapsed time “t” between the initial wavefront <b>1506</b> and the multipath reflection part <b>1508</b> of the second waveform <b>1504</b> (see <figref idref="DRAWINGS">FIG. 15</figref><i>b</i>). In this embodiment, the intruder <b>1102</b> could be in one of many places indicated by the ellipse shown in <figref idref="DRAWINGS">FIG. 14</figref> (shown are two possible positions of the intruder <b>1102</b>). Reference is made to the second embodiment of the intrusion detection system <b>1100</b>′ which can determine the real location of the intruder <b>1102</b>.
At step <b>1612</b>, the receiving impulse radio unit <b>900</b> sounds an alarm and/or informs remote security personnel when there is an intruder <b>1102</b> present in she protection sure <b>1104</b>. For extra security, the receiving impulse radio unit <b>900</b> can use impulse radio technology to alert the remote security personnel.
DETAILED DESCRIPTION OF SECOND EMBODIMENT
Referring to <figref idref="DRAWINGS">FIG. 17</figref>, there is a diagram illustrating a second embodiment of the intrusion detection system <b>1100</b> in accordance with the present invention. The second embodiment of the intrusion detection system <b>1000</b> is illustrated using prime referenced numbers. Basically, the intrusion detection system <b>1000</b>′ is the same as the first embodiment except that at least three receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ are used to enable a current position of the intruder <b>1102</b>′ to be triangulated and determined within the protection sons <b>1104</b>′. Each of the three receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ operate in a similar manner as the receiving impulse radio unit <b>900</b> of the first embodiment.
The intrusion detection system <b>1100</b>′ includes a transmitting impulse radio unit <b>1000</b>′ and at least three receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′. The transmitting impulse radio unit <b>1000</b>′ transmits an impulse radio signal <b>1402</b>′ having a known pseudorandom sequence of pulses that look like a series of Gaussian waveforms (see <figref idref="DRAWINGS">FIG. 1</figref>). Initially, the impulse radio signal <b>1402</b>′ is transmitted within and through a protection zone <b>1104</b>′ that does not have an intruder <b>1102</b>′.
Each receiving impulse radio unit <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ respectively receives the first impulse radio signal <b>1402</b>′ and generates a first waveform <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>a</i>). The first waveform <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′ is a time domain representation of the actual distortion of the transmitted Gaussian waveform, after being filtered by the environment around the transmitting impulse radio unit <b>1000</b>′ and each receiving impulse radio unit <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′. In other words, each first waveform <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′ corresponds to the received impulse shape of the impulse radio signal <b>1402</b>′ that is received by the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ when there is no intruder <b>1102</b>′ located in the protection zone <b>1104</b>′.
After the generation of the first waveforms <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′, each receiving impulse radio unit <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ receives at a subsequent time “t<sub>s</sub>” the impulse radio signal <b>1402</b>′ having a known pseudorandom sequence of pulses that are similar to the pulses initially transmitted, by the transmitting impulse radio unit <b>1000</b>′ during the generation of the first waveforms <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′. However at this time, the impulse radio signal <b>1402</b>′ is transmitted within and through a protection zone <b>1104</b>′ that does have an intruder <b>1102</b>′.
In particular, each receiving impulse radio unit <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ respectively receives the impulse radio signal <b>1402</b>′ that passed over a direct path <b>1404</b><i>a</i>′, <b>1404</b><i>b</i>′ and <b>1404</b><i>c</i>′ between the transmitting impulse radio unit <b>1000</b>′ and the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′. The presence of the intruder <b>1102</b>′ causes each receiving impulse radio unit <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ to also respectively receive the impulse radio signal <b>1402</b>′ that passed over an indirect path <b>1406</b><i>a</i>′, <b>1406</b><i>b</i>′ and <b>1406</b><i>c</i>′ between the transmitting impulse radio unit <b>1000</b>′ and the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′. Each receiving impulse radio unit <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ receives both of these impulse radio signals <b>1402</b>′ in addition to other reflected impulse radio signals <b>1402</b>′ (not shown) over time and generates a second waveform <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>). Each second waveform <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′ is a time domain representation of the actual distortion of the transmitted Gaussian waveforms after being bounced of the intruder <b>1102</b>′ and filtered by the environment around the transmitting impulse radio unit <b>1000</b>′ and the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ use <b>900</b><i>c</i>′. In other words, the second waveforms <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b>′ each correspond to the received impulse shapes of the impulse radio signals <b>1402</b>′ that are received by each receiving impulse radio unit <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ when the intruder <b>1102</b>′ is located in the protection zone <b>1104</b>′.
Each of the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ includes a processor <b>1408</b>′ that respectively compares the first waveform <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′ and the second waveform <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′ to determine whether there is a change between the first waveform <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′ and the second waveform <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′ caused by an intruder <b>1102</b>′ entering the protection zone <b>1104</b>′. To illustrate this change between waveforms reference is made to <figref idref="DRAWINGS">FIGS. 18</figref><i>a </i>and <b>18</b><i>b</i>, where there are respectively illustrated exemplary first waveforms <b>1592</b><i>a</i>′, <b>1502</b><i>b</i>′, <b>1502</b><i>c</i>′ and exemplary second, waveforms <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′ that could be generated by the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′. For instance, the receiving impulse radio unit <b>900</b><i>a</i>′ would generate the first waveform <b>1502</b><i>a</i>′ and the second waveform <b>1504</b><i>a</i>′. Each first waveform <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′ has an initial wavefront <b>1503</b><i>a</i>′, <b>1503</b><i>b</i>′ and <b>1503</b><i>c</i>′ representative of the first received impulse radio pulses of the impulse radio signal <b>1402</b>′. Likewise, each second waveform <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′ has an initial wavefront <b>1506</b><i>a</i>′, <b>1506</b><i>b</i>′ and <b>1506</b><i>c</i>′ representative of the first received impulse radio pulses in the subsequently-received impulse radio signal <b>1402</b>′. In addition, the second waveforms <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′ each have a multipath reflection part <b>1508</b><i>a</i>′, <b>1508</b><i>b</i>′ and <b>1508</b><i>c</i>′ caused by the intruder <b>1102</b>′ that was absent in the first waveforms <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′ but present in the second waveforms <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′. These multipath reflection parts <b>1508</b><i>a</i>′, <b>1508</b><i>b</i>′ and <b>1508</b><i>c</i>′ are caused by the reception of the impulse radio signals <b>1402</b>′ that bounced off the intruder <b>1102</b>′ and passed over the indirect path <b>1406</b><i>a</i>′, <b>1406</b><i>b</i>′ and <b>1406</b><i>c</i>′ between the transmitting impulse radio unit <b>1000</b> and the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′. The distances “d<b>1</b>”, “d<b>2</b>” and “d<b>3</b>” which are the differences between the direct paths <b>1402</b>′ and indirect paths <b>1406</b><i>a</i>′, <b>1406</b><i>b</i>′ and <b>1406</b><i>c</i>′ can be calculated knowing the elapsed time “t<b>1</b>”, “t<b>2</b>” and “t<b>3</b>” between the initial wavefront <b>1506</b><i>a</i>′, <b>1506</b><i>b</i>′ and <b>1506</b><i>c</i>′ and the multipath reflection part <b>1508</b><i>a</i>′, <b>1508</b><i>b</i>′ and <b>1508</b><i>c</i>′ of the second waveforms <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c′. </i>
Again it should be understood that there may be many items (e.g., walls, trees, furniture . . . ) within the protection zone <b>1104</b>′ that could cause a multipath reflection part in the first waveform <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′ and the second waveform <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′ but it is the difference between the two waveforms that indicates the presence of one or more intruders <b>1102</b>′. Moreover, it should be noted that the shape of the protection zone <b>1104</b>′ in this embodiment is basically arbitrary as compared to the specially designed shape of the protection zone <b>1104</b>″ the third embodiment.
After calculating the distances “d<b>1</b>”, “d<b>2</b>” and “d<b>3</b>” which are the differences between the direct paths <b>1402</b>′ and indirect paths <b>1406</b><i>a</i>′, <b>1406</b><i>b</i>′ and <b>1406</b><i>c</i>′, each receiving impulse radio unit <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ and transmitting unit <b>1000</b>′ forwards their calculated distance “d<b>1</b>”, “d<b>2</b>” or “d<b>3</b>” to the transmitting impulse radio unit <b>1000</b>′. Thereafter, the transmitting impulse radio unit <b>1000</b>′ has a processor <b>1802</b>′ that use the distances “d<b>1</b>”, “d<b>2</b>” and “d<b>3</b>” and the known positions of the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ to calculate the location of the intruder <b>1102</b>′ within the protection zone <b>1104</b>′. Again, the position of intruder <b>1102</b>′ can be determined by the processor <b>1802</b>′ using a numerical algorithm such as Newton-Raphson method or some other techniques. Once the position and coordinates of the intruder <b>1102</b>′ are determined, various filtering techniques (e.g., Kalman filter) can be used by the intrusion detection system HOC to track the movement of the intruder <b>1102</b>′ within the protection zone <b>1104</b>′.
It should be understood that two receiving impulse radio units <b>900</b><i>a</i>′ and <b>900</b><i>b</i>′ could be used to calculate the position of the intruder <b>1102</b>′ within the protection zone <b>1104</b>′. This is possible in the situation where one of the three receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ or <b>900</b><i>c</i>′ can be eliminated if a part of the protection zone <b>1104</b>′ is not required to be scanned end as such true triangulation of the position of the intruder <b>1102</b>′ need not be performed.
Referring to <figref idref="DRAWINGS">FIGS. 19</figref><i>a</i>-<b>19</b><i>b</i>, there is a flowchart illustrating the basic steps of a second embodiment of the preferred method <b>1600</b>′ of the present invention. Beginning at step <b>1902</b>, the transmitting impulse radio unit <b>1000</b>′ operates to transmit the impulse radio signal <b>1402</b>′. At this time, the impulse radio signal <b>1402</b>′ is made up of impulse radio pulses that are transmitted within and through a protection zone <b>1104</b>′ that does not have an intruder <b>1102</b>′.
At step <b>1904</b>, the first receiving impulse radio unit <b>900</b><i>a</i>′ operates to receive the impulse radio signal <b>1402</b>′ and generate the first waveform <b>1502</b><i>a</i>′. Again, the first receiving impulse radio unit <b>900</b><i>a</i>′ receives the impulse radio signal <b>1402</b>′ and generates a first waveform <b>1502</b><i>a</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>a</i>) that is a time domain representation of the actual distortion of the transmitted Gaussian waveform after being filtered by the environment around the transmitting impulse radio unit <b>1000</b>′ and the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′. At this time, the first waveform <b>1502</b><i>a</i>′ corresponds to the received impulse shape of the impulse radio signal <b>1402</b>′ that is received by the first receiving impulse radio unit <b>900</b><i>a</i>′ when there is no intruder <b>1102</b>′ located in the protection zone <b>1104</b>′.
At step <b>1906</b>, the second receiving impulse radio unit <b>900</b><i>b</i>′ operates to receive the impulse radio signal <b>1402</b>′ and generate the first waveform <b>1502</b><i>b</i>′. Again, the second receiving impulse radio unit <b>900</b><i>b</i>′ receives the impulse radio signal <b>1402</b>′ and generates a first waveform <b>1502</b><i>b</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>a</i>) that is a time domain representation of the actual distortion of the transmitted Gaussian waveform after being filtered by the environment around, the transmitting impulse radio unit <b>1000</b>′ and the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′. At this time, the first waveform <b>1502</b><i>b</i>′ corresponds to the received impulse shape of the repulse radio signal <b>1402</b>′ that is received by the second receiving impulse radio unit <b>900</b><i>b</i>′ when there is no intruder <b>1102</b>′ located in the protection zone <b>1104</b>′.
At step <b>1908</b>, the third receiving impulse radio unit <b>900</b><i>c</i>′ operates to receive the impulse radio signal <b>1402</b>′ and generate the first waveform <b>1502</b><i>c</i>′. Again, the third receiving impulse radio unit <b>900</b><i>c</i>′ receives the impulse radio signal <b>1402</b>′ and generates a first waveform <b>1502</b><i>c</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>a</i>) that is a time domain representation of the actual distortion of the transmitted Gaussian waveform after being filtered by the environment around the transmitting impulse radio unit <b>1000</b>′ and the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′. At this time, the first waveform <b>1502</b><i>c</i>′ corresponds to the received impulse shape of the impulse radio signal <b>1402</b>′ that is received by the third receiving impulse radio unit <b>900</b><i>c</i>′ when there is no intruder <b>1102</b>′ located in the protection zone <b>1104</b>′. It should be understood that steps <b>1904</b>, <b>1906</b> and <b>1908</b> can take place in any order depending on the locations of the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ with respect to the location of the transmitting impulse radio unit <b>1000</b>′.
At step <b>1910</b> and at a subsequent time with respect to step <b>1904</b>, the first receiving impulse radio unit <b>900</b><i>a</i>′ operates to receive the impulse radio signal <b>1402</b>′ and generate the second waveform <b>1504</b><i>a</i>′. In the present example, the second waveform <b>1504</b><i>a</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>) illustrates what the impulse radio signals <b>1401</b>′ received by the first receiving impulse radio unit <b>900</b><i>a</i>′ looks like in the time domain with an intruder <b>1102</b>′ located in the protection zone <b>1104</b>′. In other words, the second waveform <b>1502</b><i>a</i>′ corresponds to the received impulse shape of the impulse radio signals <b>1402</b>′ that are received by the first receiving impulse radio unit <b>900</b><i>a</i>′ over the direct path <b>1404</b><i>a</i>′ and the indirect path <b>1406</b><i>a</i>′ when the intruder <b>1102</b>′ is located in the protection zone <b>1104</b>′.
At step <b>1912</b> and at a subsequent time with respect to step <b>1908</b>, the second receiving impulse radio unit <b>900</b><i>b</i>′ operates to receive the impulse radio signal <b>1402</b>′ and generate the second waveform <b>1504</b><i>b</i>′. In the present example, the second waveform <b>1504</b><i>b</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>) illustrates what the impulse radio signals <b>1402</b>′ received by the second receiving impulse radio unit <b>900</b><i>b</i>′ looks like in the time domain with an intruder <b>1102</b>′ located in the protection zone <b>1104</b>′. In other words, the second waveform <b>1502</b><i>b</i>′ corresponds to the received impulse shape of the impulse radio signals <b>1402</b>′ that are received by the second receiving impulse radio unit <b>900</b><i>b</i>′ over the direct path <b>1404</b><i>b</i>′ and the inch roof path <b>1406</b><i>b</i>′ when the intruder <b>1102</b>′ is located in the protection zone <b>1104</b>′.
At step <b>1914</b> and at a subsequent time with respect to step <b>2008</b>, the third receiving impulse radio unit <b>900</b><i>c</i>′ operates to receive the impulse radio signal <b>1402</b>′ and generate the second waveform <b>1504</b><i>c</i>′. In the present example, the second waveform <b>1504</b><i>c</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>) illustrates what the impulse radio signals <b>1402</b>′ received by the third receiving impulse radio unit <b>900</b><i>c</i>′ looks like in the time domain with an intruder <b>1102</b>′ located in the protection cone <b>1104</b>′. In other words, the second waveform <b>1502</b><i>c</i>′ corresponds to the received impulse shape of the impulse radio signals <b>1402</b>′ that are received by the third receiving impulse radio unit <b>900</b><i>c</i>′ over true direct path <b>1404</b><i>c</i>′ and the indirect path <b>1406</b><i>c</i>′ when the intruder <b>1102</b>′ is located in the protection some <b>1104</b>′. It should be understood that steps <b>1910</b>, <b>1912</b> and <b>1914</b> can take place in any order depending on the locations of the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ with respect to the location of the transmitting impulse radio unit <b>1000</b>′.
At step <b>1916</b>, the processor <b>1408</b><i>a</i>′ within the first receiving impulse radio unit <b>900</b><i>a</i>′ operates to compare the first waveform <b>1502</b><i>a</i>′ and the second waveform <b>1504</b><i>a</i>′ to determine whether there is a change between the first waveform <b>1502</b><i>a</i>′ and the second waveform <b>1504</b><i>a</i>′ caused by an intruder <b>1102</b>′ entering the protection zone <b>1104</b>′. In the present example, there is a change between the first waveform <b>1502</b><i>a</i>′ and the second waveform <b>1504</b><i>a</i>′ because an intruder <b>1102</b>′ was not present when the first waveform <b>1502</b><i>a</i>′ was generated but the intruder <b>1102</b>′ was present when the second waveform <b>1504</b><i>a</i>′ was generated by the first receiving impulse radio unit <b>900</b><i>a</i>′ (see <figref idref="DRAWINGS">FIGS. 18</figref><i>a</i>-<b>18</b><i>b</i>). This change is noticeable due to the presence of the multipath reflection part <b>1508</b><i>a</i>′ caused by the intruder <b>1102</b>′. Of course, the first receiving impulse radio unit <b>900</b><i>a</i>′ may generate many second waveforms at step <b>1910</b> in which there is no difference or very little difference with a first waveform because an intruder <b>1102</b>′ was not present. If an intruder <b>1102</b>′ is not present in the protection zone <b>1104</b>′ then the method <b>1600</b>′ returns to and repeats steps <b>1910</b> and <b>1910</b> until an intruder <b>1102</b>′ is determined to be present in the protection zone <b>1104</b>′.
At step <b>1918</b>, if the intruder <b>1102</b>′ is determined to be in the protection zone <b>1104</b>′, the processor <b>1408</b><i>a</i>′ could then calculate the distance “d<b>1</b>” between direct and indirect paths by knowing the elapsed, time “t<b>1</b>” between the initial wavefront <b>1506</b><i>a</i>′ and the multipath reflection part <b>1508</b><i>a</i>′ of the second waveform <b>1504</b><i>a</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>). For instance, the distance “d<b>1</b>” can be calculated to be 0.984 feet for each nanosecond in the elapsed time “t<b>1</b>” between the initial wavefront <b>1506</b><i>a</i>′ and the multipath reflection part <b>1508</b><i>a</i>′ of the second waveform <b>1504</b><i>a</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>).
At step <b>1920</b>, the processor <b>1408</b><i>b</i>′ within the second receiving impulse radio unit <b>900</b><i>b</i>′ operates to compare the first waveform <b>1502</b><i>b</i>′ and the second waveform <b>1504</b><i>b</i>′ to determine whether there is a change between the first waveform <b>1502</b><i>b</i>′ and the second waveform <b>1504</b><i>b</i>′ caused by an intruder <b>1102</b>′ entering the protection zone <b>1104</b>′. In the present example, there is a change between the first waveform <b>1502</b><i>b</i>′ and the second waveform <b>1504</b><i>b</i>′ because an intruder <b>1102</b>′ was not present when the first waveform <b>1502</b><i>b</i>′ was generated but the intruder <b>1102</b>′ was present when the second, waveform <b>1504</b><i>b</i>′ was generated by the second receiving impulse radio unit <b>900</b><i>b</i>′ (see <figref idref="DRAWINGS">FIGS. 18</figref><i>a</i>-<b>18</b><i>b</i>). This change is noticeable due to the presence of the multipath reflection part <b>1508</b><i>b</i>′ caused by the intruder <b>1102</b>′. Of course, the second receiving impulse radio unit <b>900</b><i>b</i>′ may generate many second, waveforms at step <b>1912</b> in which there is no difference or very little difference with a first waveform because an intruder <b>1102</b>′ was not present. If an intruder <b>1102</b>′ is not present in the protection zone <b>1104</b>′ then the method <b>1600</b>′ returns to and repeats steps <b>1912</b> and <b>1920</b> until an intruder <b>1102</b>′ is determined to be present in the protection zone <b>1104</b>′.
At step <b>1922</b>, if the intruder <b>1102</b>′ is determined to be in the protection zone <b>1104</b>′, the processor <b>1408</b><i>b</i>′ could then calculate the distance “d<b>2</b>” between direct and indirect paths by knowing the elapsed time “t<b>2</b>” between the initial wavefront <b>1506</b><i>b</i>′ and the multipath reflection part <b>1508</b><i>b</i>′ of the second waveform <b>1504</b><i>b</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>). For instance, the distance “d<b>2</b>” can be calculated to be 0.984 feet for each nanosecond in the elapsed time “t<b>2</b>” between the initial wavefront <b>1506</b><i>b</i>′ and the multipath reflection part <b>1508</b><i>b</i>′ of the second waveform <b>1504</b><i>b</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>).
At step <b>1924</b>, the processor <b>1408</b><i>c</i>′ within the third receiving impulse radio unit <b>900</b><i>c</i>′ operates to compare the first waveform <b>1502</b><i>c</i>′ and the second waveform <b>1504</b><i>c</i>′ to determine whether there is a change between the first waveform <b>1502</b><i>c</i>′ and the second waveform <b>1504</b><i>c</i>′ caused by an intruder <b>1102</b>′ entering the protection zone <b>1104</b>′. In the present example, there is a change between the first waveform <b>1502</b><i>c</i>′ and the second waveform <b>1504</b><i>c</i>′ because an intruder <b>1102</b>′ was not present when the first waveform <b>1502</b><i>c</i>′ was generated but the intruder <b>1102</b>′ was present when the second waveform <b>1504</b><i>c</i>′ was generated by the third receiving impulse radio unit <b>900</b><i>c</i>′ (see <figref idref="DRAWINGS">FIGS. 18</figref><i>a</i>-<b>18</b><i>b</i>). This change is noticeable due to the presence of the multipath reflection part <b>1508</b><i>c</i>′ caused by the intruder <b>1102</b>′. Of course, the third receiving impulse radio unit <b>900</b><i>c</i>′ may generate many second waveforms at step <b>1914</b> in which there is no difference or very little difference with a first waveform because an intruder <b>1102</b>′ was not present. If an intruder <b>1102</b>′ is not present in the protection zone <b>1104</b>′ then the method <b>1000</b>′ returns to and repeats steps <b>1914</b> and <b>1924</b> until an intruder <b>1102</b>′ is determined to be present in the protection zone <b>1104</b>′.
At step <b>1926</b>, if the intruder <b>1102</b>′ is determined to be in the protection zone <b>1104</b>′, the processor <b>1408</b><i>c</i>′ could then calculate the distance “d<b>3</b>” between direct and indirect paths by knowing the elapsed time “t<b>3</b>” between the initial wavefront <b>1506</b><i>c</i>′ and the multipath reflection part <b>1508</b><i>c</i>′ of the second waveform <b>1504</b><i>c</i>′ (see <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>). For instance, the distance “d<b>3</b>” can be calculated to be 0.984 feet for each nanosecond in the elapsed time “t<b>3</b>” between the initial wavefront <b>1506</b><i>c</i>′ and the multipath reflection part <b>1508</b><i>c</i>′ of the second waveform <b>1504</b><i>c</i>′ (see <figref idref="DRAWINGS">FIG. 10</figref><i>b</i>).
At step <b>1928</b>, after calculating the distances “d<b>1</b>”, “d<b>2</b>” and “d<b>3</b>” between each receiving impulse radio unit <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ and the intruder <b>1102</b>′, each receiving impulse radio unit <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ forwards their calculated distance “d<b>1</b>”, “d<b>2</b>” or “d<b>3</b>” to the transmitting impulse radio unit <b>1000</b>′.
At step <b>1930</b>, the transmitting impulse radio unit <b>1000</b>′ has a processor <b>1802</b>′ that use the distances “d<b>1</b>”, “d<b>2</b>” and “d<b>3</b>” and the known positions of the receiving impulse radio units <b>900</b><i>a</i>′, <b>900</b><i>b</i>′ and <b>900</b><i>c</i>′ to calculate the location of the intruder <b>1102</b>′ within the protection zone <b>1104</b>′. Again, the position of intruder <b>1102</b>′ can be determined by the processor <b>1802</b>′ using a numerical algorithm such as Newton-Raphson method or some other techniques.
At step <b>1932</b>, once the position and coordinates of the intruder <b>1102</b>′ are determined at step <b>1932</b>, then various filtering techniques (e.g., Kalman filter) can be used by the intrusion detection system <b>1100</b>′ to track the movement of the intruder <b>1102</b>′ within the protection zone <b>1104</b>′.
At step <b>1934</b>, the intrusion detection system <b>1100</b>′ sounds an alarm and/or informs remote security personnel when there is an intruder <b>1102</b>′ present in the protection zone <b>1104</b>′. For extra security, the intrusion detection system <b>1100</b>′ can use impulse radio technology to alert the remote security personnel.
DETAILED DESCRIPTION OF THIRD EMBODIMENT
Referring to <figref idref="DRAWINGS">FIG. 20</figref>, there is a diagram illustrating a third embodiment of the intrusion detection system <b>1100</b> in accordance with the present invention. The third embodiment of the intrusion detection system <b>1100</b> is illustrated using double prime referenced numbers. Basically, the intrusion detection system <b>1100</b>″ is similar to the second embodiment except that prior to detecting any intruders <b>1102</b>″ the intrusion detection system <b>1100</b>″ can utilize a test subject <b>2002</b>″ and impulse radio technology to design the shape of the protection zone <b>1104</b>″. In other words, the intrusion detection system <b>1100</b>″ enables the creation of an unusually shaped protection zone <b>1104</b><i>c</i>″ instead of using the arbitrary shapes associated with the protection zones <b>1104</b> and <b>1104</b>′ of the first two embodiments. Prior to arming the intrusion detection system <b>1100</b>′, the system can be put into a “learning mode”. During the “learning mode”, the test subject <b>2002</b>″ traverses the perimeter <b>2204</b>″ of the protection zone <b>1104</b><i>c</i>″ to be protected and the intrusion detection system <b>1100</b>″ would track the test subject <b>2002</b>″ and build a two and possibly three-dimensional representation of the shape of the protection zone <b>1104</b><i>c</i>″. The intrusion detection system <b>1100</b>″ can track the test subject <b>2002</b>″ in the same manner the intrusion detection system <b>1100</b>′ would track an intruder <b>1104</b>′ in the second embodiment.
Like the second embodiment, the intrusion detection system <b>1100</b>″ includes a transmitting impulse radio unit <b>1000</b>″ and at least three receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″. The transmitting impulse radio unit <b>1000</b>″ transmits an impulse radio signal <b>1402</b>″ having a known pseudorandom sequence of pulses that look like a series of Gaussian waveforms (see <figref idref="DRAWINGS">FIG. 1</figref>). Initially, the impulse radio signal <b>1402</b>″ is transmitted within and through an area including the protection zone <b>1104</b><i>c</i>″ that does not have an intruder <b>1102</b>″.
Each receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ receives the first impulse radio signal <b>1402</b>″ and generates a first waveform <b>1502</b><i>a</i>″, <b>1502</b><i>b</i>″ and <b>1502</b><i>c</i>″ (similar to the first waveforms <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′ shown in <figref idref="DRAWINGS">FIG. 18</figref><i>a</i>). Each of the first waveforms <b>1502</b><i>a</i>″, <b>1502</b><i>b</i>″ and <b>1502</b><i>c</i>″ is a time domain representation of the actual distortion of the transmitted Gaussian waveform after being filtered by the environment around the transmitting impulse radio unit <b>1000</b>″ and each receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″. In other words, each first waveform <b>1502</b><i>a</i>″, <b>1502</b><i>b</i>″ and <b>1502</b><i>c</i>″ corresponds to the received impulse shape of the impulse radio signal <b>1402</b>″ that is received by each receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ when there is no intruder <b>1102</b>″ located in or near the protection zone <b>1104</b><i>c″. </i>
After the generation of the first waveforms <b>1502</b><i>a</i>″, <b>1502</b><i>b</i>″ and <b>1502</b><i>c</i>″, each receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ receives at a subsequent time “t<sub>s</sub>” the impulse radio signal <b>1402</b>″ having a known pseudorandom sequence of pulses that are similar to the pulses initially transmitted by the transmitting impulse radio unit <b>1000</b>″ during the generation of the first waveforms <b>1502</b><i>a</i>″, <b>1502</b><i>b</i>″ and <b>1502</b><i>c</i>″. However at this time, the impulse radio signal <b>1402</b>″ is transmitted within and through a protection, zone <b>1104</b><i>c</i>″ that does have an intruder <b>1102</b>″ in or near it.
In particular, each receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ respectively receives the impulse radio signal <b>1402</b>″ that passed over a direct path <b>1404</b><i>a</i>″, <b>1404</b><i>b</i>″ and <b>1404</b><i>c</i>″ between the transmitting impulse radio unit <b>1000</b>″ and the receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″. The presence of the intruder <b>1102</b>″ causes each receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ to also respectively receive the impulse radio signal <b>1402</b>″ that passed over an indirect path <b>1406</b><i>a</i>″, <b>1406</b><i>b</i>″ and <b>1406</b><i>c</i>″ from the transmitting impulse radio unit <b>1000</b>″ to the receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″. Each receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ receives both of these impulse radio signals <b>1402</b>″ in addition to other reflected impulse radio signals <b>1402</b>″ (not shown) over time and generates a second waveform <b>1504</b><i>a</i>″, <b>1504</b><i>b</i>″ and <b>1504</b><i>c</i>″ (similar to the second waveforms <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′ shown in <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>). Each second waveform <b>1504</b><i>a</i>″, <b>1504</b><i>b</i>″ and <b>1504</b><i>c</i>″ is a time domain representation of the actual distortion of the transmitted Gaussian waveforms after being bounced of the intruder <b>1102</b>″ and filtered by the environment around the transmitting impulse radio unit <b>1000</b>″ and the receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″. In other words, the second waveforms <b>1504</b><i>a</i>″, <b>1504</b><i>b</i>″ and <b>1504</b><i>c</i>″ each correspond to the received impulse shapes of the impulse radio signals <b>1402</b>″ that are received by each receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ when the intruder <b>1102</b>″ is located in or near the protection zone <b>1104</b><i>c</i>″. A determination as to whether the intruder <b>1104</b>″ is actually inside the specially shaped protection zone <b>1104</b><i>c</i>″ is made later by the processor <b>1802</b>″ associated with the transmitting impulse radio unit <b>1000</b>″.
Each of the receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ includes a processor <b>1408</b>″ that compares the first waveform <b>1502</b><i>a</i>″, <b>1502</b><i>b</i>″ and <b>1502</b><i>c</i>″ and the second waveform <b>1504</b><i>a</i>″, <b>1504</b><i>b</i>″ and <b>1504</b><i>c</i>″ to determine whether there is a change between the first waveform <b>1502</b><i>a</i>″, <b>1502</b><i>b</i>″ and <b>1502</b><i>c</i>″ and the second waveform <b>1504</b><i>a</i>″, <b>1504</b><i>b</i>″ and <b>1504</b><i>c</i>″ caused by an intruder <b>1102</b>″ entering or coming near the protection zone <b>1104</b><i>c</i>″. Like the first waveforms <b>1502</b><i>a</i>′, <b>1502</b><i>b</i>′ and <b>1502</b><i>c</i>′ and the second waveforms <b>1504</b><i>a</i>′, <b>1504</b><i>b</i>′ and <b>1504</b><i>c</i>′ shown in <figref idref="DRAWINGS">FIGS. 19</figref><i>a </i>and <b>19</b><i>b</i>, each first waveform <b>1502</b><i>a</i>″, <b>1502</b><i>b</i>″ and <b>1502</b><i>c</i>″ has an initial wavefront <b>1503</b><i>a</i>″, <b>1503</b><i>b</i>″ and <b>1503</b><i>c</i>″ representative of the first received impulse radio pulses of the impulse radio signal <b>1402</b>″. Likewise, each second waveform <b>1504</b><i>a</i>″, <b>1504</b><i>b</i>″ and <b>1504</b><i>c</i>″ has an initial wavefront <b>1506</b><i>a</i>″, <b>1506</b><i>b</i>″ and <b>1506</b><i>c</i>″ representative of the first received impulse radio pulses in the subsequently received impulse radio signal <b>1402</b>″. In addition, the second waveforms <b>1504</b><i>a</i>″, <b>1504</b><i>b</i>″ and <b>1504</b><i>c</i>″ each have a multipath reflection part <b>1508</b><i>a</i>″, <b>1508</b><i>b</i>″ and <b>1508</b><i>c</i>″ caused by the intruder <b>1102</b>″ that was absent in the first waveforms <b>1502</b><i>a</i>″, <b>1502</b><i>b</i>″ and <b>1502</b><i>c</i>″ but present in the second waveforms <b>1504</b><i>a</i>″, <b>1504</b><i>b</i>″ and <b>1504</b><i>c</i>″. These multipath reflection parts <b>1508</b><i>a</i>″, <b>1508</b><i>b</i>″ and <b>1508</b><i>c</i>″ are caused by the reception of the impulse radio signals <b>1402</b>″ that bounced off the intruder <b>1102</b>″ and passed over the indirect path <b>1406</b><i>a</i>″, <b>1406</b><i>b</i>″ and <b>1406</b><i>c</i>″ between the transmitting impulse radio unit <b>1000</b>″ and the receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″. The distances “d<b>1</b>”, “d<b>2</b>” and “d<b>3</b>” between direct and indirect paths can be calculated knowing the elapsed time “t<b>1</b>”, “t<b>2</b>” and “t<b>3</b>” between the initial wavefront <b>1506</b><i>a</i>″, <b>1506</b><i>b</i>″ and <b>1506</b><i>c</i>″ of the second waveforms <b>1504</b><i>a</i>″, <b>1504</b><i>b</i>″ and <b>1504</b><i>c</i>″ and the multipath reflection part <b>1508</b><i>a</i>″, <b>1508</b><i>b</i>″ and <b>1508</b><i>c</i>″. Again, a determination as to whether the intruder <b>1104</b>″ is actually inside the specially shaped protection zone <b>1104</b><i>c</i>″ is made later by the processor <b>1802</b>″ associated with the transmitting impulse radio unit <b>1000</b>″.
It should be understood that there may be many items (e.g., walls, trees, furniture . . . ) within or near the protection zone <b>1104</b><i>c</i>″ that could cause a multipath reflection part in the first waveform <b>1502</b><i>a</i>″, <b>1502</b><i>b</i>″ and <b>1502</b><i>c</i>″ and the second waveforms <b>1504</b><i>a</i>″, <b>1504</b><i>b</i>″ and <b>1504</b><i>c</i>″ but it is the difference between the two waveforms that indicates the presence of one or more intruders <b>1102</b>″.
After calculating the distances “d<b>1</b>”, “d<b>2</b>” and “d<b>3</b>” between direct and indirect paths, each receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ forwards their calculated distance “d<b>1</b>”, “d<b>2</b>” or “d<b>3</b>” to the transmitting impulse radio unit <b>1000</b>″. Thereafter, the transmitting impulse radio unit <b>1000</b>″ has a processor <b>1802</b>″ that use she distances “d<b>1</b>”, “d<b>2</b>” and “d<b>3</b>” and the known positions of the receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ to calculate the location within or near the protection zone <b>1104</b><i>c</i>″ of the intruder <b>1102</b>″.
To do determine whether the intruder <b>1102</b>″ is actually within the protection zone <b>1104</b><i>c</i>″ (as shown) or just near the protection zone <b>1104</b><i>c</i>″, the processor <b>1802</b>″ would determine the location of the intruder <b>1102</b>″ and then compare this location to the two and possibly three-dimensional representation of the shape of the protection zone <b>1104</b><i>c</i>″. Again, the position of intruder <b>1102</b>″ can be determined by the processor <b>1802</b>″ using a numerical algorithm such as Newton-Raphson method or some other techniques. Once the position and coordinates of the intruder <b>1102</b>″ are determined, various filtering techniques (e.g., Kalman filter) can be used by the intrusion detection system <b>1100</b>″ to track the movement of the intruder <b>1102</b>″ within the protection zone <b>1104</b><i>c″. </i>
Referring to <figref idref="DRAWINGS">FIGS. 21</figref><i>a</i>-<b>21</b><i>b</i>, there is a flowchart illustrating the basic steps of a third embodiment of the preferred method <b>1600</b>″ of the present invention. Beginning at step <b>2101</b>, prior to arming the intrusion detection system <b>1100</b>″, the system is put into a “learning mode”. During the “learning mode”, the test subject <b>2002</b>″ traverses the perimeter <b>2204</b>″ of the protection zone <b>1104</b><i>c</i>″ to be protected and the intrusion detection system <b>1100</b>″ would track the test subject <b>2002</b>″ and build a two and possibly three-dimensional representation of the shape of the protection zone <b>1104</b><i>c</i>″. The intrusion detection system <b>1100</b>″ can track the test subject <b>2002</b>″ in the same manner the intrusion detection system <b>1100</b>′ would track an intruder <b>1104</b>′ in the second embodiment.
At step <b>2102</b>, after creating the shape of the protection zone <b>1104</b><i>c</i>″, the transmitting impulse radio unit <b>1000</b>″ operates to transmit the impulse radio signal <b>1402</b>″. At this time, the impulse radio signal <b>1402</b>″ is made up of impulse radio pulses that are transmitted within and through a protection zone <b>1104</b><i>c</i>″ that does not have an intruder <b>1102</b>″.
At step <b>2104</b>, the first receiving impulse radio unit <b>900</b><i>a</i>″operates to receive the impulse radio signal <b>1402</b>″ and generate the first waveform <b>1502</b><i>a</i>″. Again, the first receiving impulse radio unit <b>900</b><i>a</i>″ receives the impulse radio signal <b>1402</b>″ and generates a first waveform <b>1502</b><i>a</i>″ (e.g., see first waveform <b>1502</b><i>a</i>′ in <figref idref="DRAWINGS">FIG. 19</figref><i>a</i>) that is a time domain representation of the actual distortion of the transmitted Gaussian waveform after being filtered by the environment around the transmitting impulse radio unit <b>1000</b>″ and the receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″. At this time, the first waveform <b>1502</b><i>a</i>″ corresponds to the received impulse shape of the impulse radio signal <b>1402</b>″ that is received by the first receiving impulse radio unit <b>900</b><i>a</i>″ when there is no intruder <b>1102</b>″ located in or near the protection zone <b>1104</b><i>c″. </i>
At step <b>2106</b>, the second receiving impulse radio unit <b>900</b><i>b</i>″ operates to receive the impulse radio signal <b>1402</b>″ and generate the first waveform <b>1502</b><i>b</i>″, Again, the second receiving impulse radio unit <b>900</b><i>b</i>″ receives the impulse radio signal <b>1402</b>″ and generates a first waveform <b>1502</b><i>b</i>″ (e.g., see first waveform <b>1502</b><i>b</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>a</i>) that is a time domain representation of the actual distortion of the transmitted Gaussian waveform after being filtered by the environment around the transmitting impulse radio unit <b>1000</b>″ and the receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″. At this time, the first waveform <b>1502</b><i>b</i>″ corresponds to the received impulse shape of the impulse radio signal <b>1402</b>″ that is received by the second receiving impulse radio unit <b>900</b><i>b</i>″ when there is no intruder <b>1102</b>″ located in or near the protection zone <b>1104</b><i>c″. </i>
At step <b>2108</b>, the third receiving impulse radio unit <b>900</b><i>c</i>″ operates to receive the impulse radio signal <b>1402</b>″ and generate the first waveform <b>1502</b><i>c</i>″. Again, the third receiving impulse radio unit <b>900</b><i>c</i>″ receives the impulse radio signal <b>1402</b>″ and generates a first waveform <b>1502</b><i>c</i>″ (e.g., see first waveform <b>1502</b><i>c</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>a</i>) that is a time domain representation of the actual distortion of the transmitted Gaussian waveform after being filtered by the environment around the transmitting impulse radio unit <b>1000</b>″ and the receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″. At this time, the first waveform <b>1502</b><i>c</i>″ corresponds to the received impulse shape of the impulse radio signal <b>1402</b>″ that is received by the third receiving impulse radio unit <b>900</b><i>c</i>″ when there is no intruder <b>1102</b>″ located in or near the protection zone <b>1104</b><i>c</i>″. It should be understood that steps <b>2104</b>, <b>2106</b> and <b>2108</b> can take place in any order depending on the locations of the receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ with respect to the location of the transmitting impulse radio unit <b>1000</b>″.
At step <b>2110</b> and at a subsequent time with respect to step <b>2304</b>, the first receiving impulse radio unit <b>900</b><i>a</i>″ operates to receive the impulse radio signal <b>1402</b>″ and generate the second waveform <b>1504</b><i>a</i>″. In the present example, the second waveform <b>1504</b><i>a</i>″ (e.g., see second waveform <b>1504</b><i>a</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>) illustrates what the impulse radio signals <b>1402</b>″ received by the first receiving impulse radio unit <b>900</b><i>a</i>″ looks like in the time domain with an intruder <b>1102</b>″ located in or near the protection zone <b>1104</b><i>c</i>″. In other words, the second waveform <b>1502</b><i>a</i>″ corresponds to the received impulse shape of the impulse radio signals <b>1402</b>″ than are received by the first receiving impulse radio unit <b>900</b><i>a</i>″ over the direct path <b>1404</b><i>a</i>″ and the indirect path <b>1406</b><i>a</i>″ when the intruder <b>1102</b>″ is located in or near the protection zone <b>1104</b><i>c</i>″. A determination as to whether the intruder <b>1104</b>″ is actually inside the specially shaped protection zone <b>1104</b><i>c</i>″ is made later at step <b>2030</b> by the processor <b>1802</b>″ associated with the transmitting impulse radio unit <b>1000</b>″.
At step <b>2112</b> and at a subsequent time with respect to step <b>2308</b>, the second receiving impulse radio unit <b>900</b><i>b</i>″ operates to receive the impulse radio signal <b>1402</b>″ and generate the second waveform <b>1504</b><i>b</i>″. In the present example, the second waveform <b>1504</b><i>b</i>″ (e.g., see second waveform <b>1504</b><i>b</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>b </i>illustrates what the impulse radio signals <b>1402</b>″ received by the second receiving impulse radio unit <b>900</b><i>b</i>″ looks like in the time domain with an intruder <b>1102</b>″ located in or near the protection zone <b>1104</b><i>c</i>″. In other words, the second waveform <b>1502</b><i>b</i>″ corresponds to the received impulse shape of the impulse radio signals <b>1402</b>″ that are received by the second receiving impulse radio unit <b>900</b><i>b</i>″ over the direct path <b>1404</b><i>b</i>″ and the indirect path <b>1406</b><i>b</i>″ when the intruder <b>1102</b>″ is located in or near the protection zone <b>1104</b><i>c</i>″. Again, a determination as to whether the intruder <b>1104</b>″ is actually inside the specially shaped protection zone <b>1104</b><i>c</i>″ is made later at step <b>2130</b> by the processor <b>1802</b>″ associated with the transmitting impulse radio unit <b>1000</b>″.
At step <b>2114</b> and at a subsequent time with respect to step <b>2108</b>, the third receiving impulse radio unit <b>900</b><i>c</i>″ operates to receive the impulse radio signal <b>1402</b>″ and generate she second waveform <b>1504</b><i>c</i>″. In the present example, the second waveform <b>1504</b><i>c</i>″ (e.g., see second waveform <b>1504</b><i>c</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>) illustrates what the impulse radio signals <b>1402</b>″ received by the third receiving impulse radio unit <b>900</b><i>c</i>″ looks like in the time domain with an intruder <b>1102</b>″ located in or near the protection zone <b>1104</b><i>c</i>″. In other words, the second waveform <b>1502</b><i>c</i>″ corresponds to the received impulse shape of the impulse radio signals <b>1402</b>″ that are received by the third receiving impulse radio unit <b>900</b><i>c</i>″ over the direct path <b>1404</b><i>c</i>″ and the indirect path <b>1406</b><i>c</i>″ when the intruder <b>1102</b>″ is located in or near the protection zone <b>1104</b><i>c</i>′. Again, a determination as to whether the intruder <b>1104</b>″ is actually inside the specially shaped protection zone <b>1104</b><i>c</i>″ is made later at step <b>2030</b> by the processor <b>1802</b>″ associated with the transmitting impulse radio unit <b>1000</b>″. It should be understood that steps <b>2110</b>, <b>2112</b> and <b>2114</b> can take place in any order depending on the locations of the receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ with respect to the location of the transmitting impulse radio unit <b>1000</b>″.
At step <b>2116</b>, the processor <b>1408</b><i>a</i>″ within the first receiving impulse radio unit <b>900</b><i>a</i>″ operates to compare the first waveform <b>1502</b><i>a</i>″ and the second waveform <b>1504</b><i>a</i>″ to determine whether there is a change between the first waveform <b>1502</b><i>a</i>″ and the second waveform <b>1504</b><i>a</i>″ caused by an intruder <b>1102</b>″ coming near or entering the protection zone <b>1104</b><i>c</i>″. In the present example, there is a change between the first waveform <b>1502</b><i>a</i>″ and the second waveform <b>1504</b><i>a</i>″ because an intruder <b>1102</b>″ was not present when the first waveform <b>1502</b><i>a</i>″was generated but the intruder <b>1102</b>″ was present when the second waveform <b>1504</b><i>a</i>″ was generated by the first receiving impulse radio unit <b>900</b><i>a</i>″ (e.g., see first waveform <b>1502</b><i>a</i>′ and second waveform <b>1504</b><i>a</i>′ in <figref idref="DRAWINGS">FIGS. 18</figref><i>a</i>-<b>18</b><i>b</i>) . This change is noticeable due to the presence of the multipath reflection part <b>1508</b><i>a</i>″ caused by the intruder <b>1102</b>″. Of course, the first receiving impulse radio unit <b>900</b><i>a</i>″ may generate many second waveforms at step <b>2110</b> in which there is no difference or very little difference with a first waveform because an intruder <b>1102</b>″ was not present. If an intruder <b>1102</b>″ is not within or near the protection zone <b>1104</b><i>c</i>″ then the method <b>1600</b>″ returns to and repeats steps <b>2110</b> and <b>2116</b> until an intruder <b>1102</b>″ is determined to be within or near the protection zone <b>1104</b><i>c″. </i>
At step <b>2118</b>, if the intruder <b>1102</b>″ is determined to be within or near the protection zone <b>1104</b><i>c</i>″, the processor <b>1408</b><i>a</i>″ could then calculate the distance “d<b>1</b>” between direct and indirect paths by knowing the elapsed time “t<b>1</b>” between the initial wavefront <b>1506</b><i>a</i>″ and the multipath reflection part <b>1508</b><i>a</i>″ of the second waveform <b>1504</b><i>a</i>″ (e.g., see second waveform <b>1504</b><i>a</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>). For instance, the distance “d<b>1</b>” can be calculated to be 0.984 feet for each nanosecond in the elapsed time “t<b>1</b>” between the initial wavefront <b>1506</b><i>a</i>″ and the multipath reflection part <b>1508</b><i>a</i>″ of the second waveform <b>1504</b><i>a</i>″(e.g., see second waveform <b>1504</b><i>a</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>). Again, a determination as to whether the intruder <b>1104</b>″ is actually inside the specially shaped protection zone <b>1104</b><i>c</i>″ is made later at step <b>2130</b> by the processor <b>1802</b>″ associated with the transmitting impulse radio unit <b>1000</b>″.
At step <b>2120</b>, the processor <b>1408</b><i>b</i>″ within the second receiving impulse radio unit <b>900</b><i>b</i>″ operates to compare the first waveform <b>1502</b><i>b</i>″ and the second waveform <b>1504</b><i>b</i>″ to determine whether there is a change between the first waveform <b>1502</b><i>b</i>″ and the second waveform <b>1504</b><i>b</i>″ caused by an intruder <b>1102</b>″ coming near or entering the protection zone <b>1104</b><i>c</i>″. In the present example, there is a change between the first waveform <b>1502</b><i>b</i>″ and the second waveform <b>1504</b><i>b</i>″ because an intruder <b>1102</b>″ was not present when the first waveform <b>1502</b><i>b</i>′ was generated but the intruder <b>1102</b>″ was present when the second waveform <b>1504</b><i>b</i>″ was generated by the second receiving impulse radio unit <b>900</b><i>b</i>″ (e.g., see first waveform <b>1502</b><i>b</i>′ and second waveform <b>1504</b><i>b</i>′ in <figref idref="DRAWINGS">FIGS. 18</figref><i>a</i>-<b>18</b><i>b</i>). This change is noticeable due to the presence of the multipath reflection part <b>1508</b><i>b</i>″ caused by the intruder <b>1102</b>″. Of course, the second receiving impulse radio unit <b>900</b><i>b</i>″ may generate many second waveforms at step <b>2112</b> in which there is no difference or very little difference with a first waveform because an intruder <b>1102</b>″ was not present. If an intruder <b>1102</b>″ is not within or near the protection zone <b>1104</b><i>c</i>″ then the method <b>1600</b>″ returns to and repeats steps <b>2112</b> and <b>2120</b> until an intruder <b>1102</b>″ is determined to be within or near the protection zone <b>1104</b><i>c″. </i>
At step <b>2122</b>, if the intruder <b>1102</b>″ is determined to be within or near the protection zone <b>1104</b><i>c</i>″, the processor <b>1408</b><i>b</i>″ could then calculate the distance “d<b>2</b>” between direct and indirect paths by knowing the elapsed time “t<b>2</b>” between the initial wavefront <b>1506</b><i>b</i>″ and the multipath reflection part <b>1508</b><i>b</i>″ of the second waveform <b>1504</b><i>b</i>″ (e.g., see second waveform <b>1504</b><i>b</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>). For instance, the distance “d<b>2</b>” can be calculated to be 0.984 feet for each nanosecond in the elapsed time “t<b>2</b>” between the initial wavefront <b>1506</b><i>b</i>″ and the multipath reflection part <b>1508</b><i>b</i>″ of the second waveform <b>1504</b><i>b</i>″(e.g., see second waveform <b>1504</b><i>b</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>). Again, a determination as to whether the intruder <b>1104</b>″ is actually inside the specially shaped protection zone <b>1104</b><i>c</i>″ is made later at step <b>2030</b> by the processor <b>1802</b>″ associated with the transmitting impulse radio unit <b>1000</b>″.
At step <b>2124</b>, the processor <b>1408</b><i>c</i>″ within the third receiving impulse radio unit <b>900</b><i>c</i>″ operates to compare the first waveform <b>1502</b><i>c</i>″ and the second waveform <b>1504</b><i>c</i>″ to determine whether there is a change between the first waveform <b>1502</b><i>c</i>″ and the second waveform <b>1504</b><i>c</i>″ caused by an intruder <b>1102</b>″ coming near or entering the protection zone <b>1104</b><i>c</i>″. In the present example, there is a change between the first waveform <b>1502</b><i>c</i>″ and the second waveform <b>1504</b><i>c</i>″ because an intruder <b>1102</b>″ was not present when the first waveform <b>1502</b><i>c</i>″was generated but the intruder <b>1102</b>″ was present when the second waveform <b>1504</b><i>c</i>″ was generated by the third receiving impulse radio unit <b>900</b><i>c</i>″ (e.g., see first waveform <b>1502</b><i>c</i>′ and second waveform <b>1504</b><i>c</i>′ In <figref idref="DRAWINGS">FIGS. 18</figref><i>a</i>-<b>18</b><i>b</i>) . This change is noticeable due to the presence of the multipath reflection part <b>1508</b><i>c</i>″ caused by the intruder <b>1102</b>″. Of course, the third receiving impulse radio unit <b>900</b><i>c</i>″ may generate many second waveforms at step <b>2314</b> in which there is no difference or very little difference with a first waveform because an intruder <b>1102</b>″ was not present. If an intruder <b>1102</b>″ is not within or near the protection zone <b>1104</b><i>c</i>″ then the method <b>1600</b>″ returns to and repeats steps <b>2114</b> and <b>2124</b> until an intruder <b>1102</b>″ is determined to be within or near the protection zone <b>1104</b><i>c″. </i>
At step <b>2126</b>, if the intruder <b>1102</b>″ is determined to be within or near the protection zone <b>1104</b><i>c</i>″, the processor <b>1408</b><i>c </i>could then calculate the distance “d<b>3</b>” between direct and indirect paths by knowing the elapsed time “t<b>3</b>” between the initial wavefront <b>1506</b><i>c</i>″ and the multipath reflection part <b>1508</b><i>c</i>″ of the second waveform <b>1504</b><i>c</i>″ (e.g., see second waveform <b>1504</b><i>c</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>). For instance, the distanced “d<b>3</b>” can be calculated to be 0.984 feet for each nanosecond in the elapsed time “t<b>3</b>” between the initial wavefront <b>1506</b><i>c</i>″ and the multipath reflection part <b>1508</b><i>c</i>″ of the second waveform <b>1504</b><i>c</i>″ (e.g., see second waveform <b>1504</b><i>c</i>′ in <figref idref="DRAWINGS">FIG. 18</figref><i>b</i>) . Again, a determination as to whether the intruder <b>1104</b>″ is actually inside the specially shaped protection zone <b>1104</b><i>c</i>″ is made later at step <b>2030</b> by the processor <b>1802</b>″ associated with the transmitting impulse radio unit <b>1000</b>″.
At step <b>2128</b>, after calculating the distances “d<b>1</b>”, “d<b>2</b>” and “d<b>3</b>” between direct and indirect paths, each receiving impulse radio unit <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ forwards their calculated distance “d<b>1</b>”, “d<b>2</b>” or “d<b>3</b>” to the transmitting impulse radio unit <b>1000</b>″.
At step <b>2130</b>, the transmitting impulse radio unit <b>1000</b>″ has a processor <b>1802</b>″ that use the distances “d<b>1</b>”, “d<b>2</b>” and “d<b>3</b>” and the known positions of the receiving impulse radio units <b>900</b><i>a</i>″, <b>900</b><i>b</i>″ and <b>900</b><i>c</i>″ to calculate the location of the intruder <b>1102</b>″ within or near the protection zone <b>1104</b><i>c</i>″. To determine whether the intruder <b>1102</b>′ is actually within the protection zone <b>1104</b><i>c</i>″ or just near the protection zone <b>1104</b><i>c</i>″, the processor <b>1802</b>″ would determine the location of the intruder <b>1102</b>″ and then compare this location to the two and possibly three-dimensional representation of the shape of the protection zone <b>1104</b><i>c</i>″. Again, the position of intruder <b>1102</b>″ can be determined by the processor <b>1802</b>″ using a numerical algorithm such as Newton-Raphson method or some other techniques.
At step <b>2132</b>, once the position and coordinates of the intruder <b>1102</b>″ are determined at step <b>2130</b>, then various filtering techniques (e.g., Kalman filter) can be used by the intrusion detection system <b>1100</b>″ to track the movement of the intruder <b>1102</b>″ within the protection, zone <b>1104</b><i>c″. </i>
At step <b>2134</b>, the intrusion detection system <b>1100</b>″ sounds an alarm and/or informs remote security personnel when there is an intruder <b>1102</b>″ located within (or near) the protection zone <b>1104</b><i>c</i>″. For extra security, the intrusion detection system <b>1100</b>″ can use impulse radio technology to alert the remote security personnel.
Referring to <figref idref="DRAWINGS">FIG. 22</figref>, there is illustrated a diagram of the intrusion detection system <b>1100</b>, <b>1100</b>′ and <b>1100</b>″ that uses one or more directive antennas <b>2202</b>. As shown, the transmitting impulse radio unit <b>1000</b>, <b>1000</b>′ and <b>1000</b>″ (only one shown) can use the directive antenna <b>2202</b> (only one shown) to transmit the impulse radio signal in a predetermined direction such that radar is sensitive in a particular area <b>2204</b> (see solid line) and not sensitive in another area <b>2206</b> (see dashed line). In particular, the intrusion detection system <b>1100</b>, <b>1100</b>′ and <b>1100</b>″ that uses an directive antenna <b>2202</b> can make the radar sensitive in a particular area <b>2204</b> to detect a person <b>2208</b> or a dangerous animal <b>2210</b> that is not supposed to be located in that area <b>2204</b> and at the same time the directive antenna <b>2202</b> does not make the radar sensitive in another area <b>2206</b> in which the dangerous animal <b>2210</b> is suppose to be located. It should be understood that the directive antenna <b>2202</b> can take many different forms including, for example, a 180° directive antenna and a 90° directive antenna. Moreover, it should also be understood that a directional antenna <b>2202</b> could be placed at the receiving impulse radio unit <b>900</b>, <b>900</b>′ and <b>900</b>″ or at both she receiving and transmitting impulse radio units.
From the foregoing, it can be readily appreciated by those skilled in the art that the present invention provides an intrusion detection system and method that can utilize impulse radio technology to detect when an intruder has entered a protection zone. In addition, the intrusion detection system and method can utilize impulse radio technology to determine a location of the intruder within the protection zone and also to track the movement of the intruder within the protection zone. Moreover, the intrusion detection system and method can utilize impulse radio technology to create a specially shaped protection zone before trying to detect when and where the intruder has penetrated and moved within the protection zone. There are many possible applications for using the present invention such as setting-up a security screen in a home/apartment for just certain rooms in the home/apartment), setting-up a security screen around a swimming pool.
Although various embodiments of the present invention have been illustrated in the accompanying Drawings and described in the foregoing Detailed Description, it should be understood that the invention is not limited to the embodiments disclosed, but is capable of numerous rearrangements, modifications and substitutions without departing from the spirit of the invention as set forth and defined by the following claims.
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Numbers
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- Application
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Titles
- English
- System and method for detecting an intruder using impulse radio technology
Patent term adjustment
- A delay
- +240 daysthe office missed an examination deadline
- Net adjustment
- 240 days
Classification
- CPC, 10
- G01S7/282
- G01S7/285
- G01S7/292
- G01S13/003
- G01S13/0209
- G01S13/04
- G01S13/42
- G01S13/878
- G08B13/187
- H04B2001/6908
- IPC, 9
- G01S7 282
- G01S13 56
- G01S7 285
- G01S7 292
- G01S13 00
- G01S13 02
- G01S13 04
- G01S13 42
- G01S13 87
- USPC, 11
- 342028000
- 342021000
- 342027000
- 342059000
- 342118000
- 342126000
- 342450000
- 342463000
- 342465000
- 375130000
- 375140000